工業(yè)3D打印出海破局:從中國智造到全球制造最先出現(xiàn)在三帝科技股份有限公司。
]]>Photo: SANTI TECHNOLOGY's industrial-grade 3D printing equipment shipment(Source: SANTI TECHNOLOGY)
As Xia Chunguang, co-founder of MoFang Precision, said, "The more precise a part is, the higher the cost of developing and producing it in the traditional way." This is precisely the core competitiveness of Chinese industrial 3D printing companies going overseas - they not only export products, but also export a new manufacturing paradigm.
01 Industry journey: from "laboratory" to "globalization"
The global 3D printing market is witnessing explosive growth. According to Mordor Intelligence, the global 3D printing market size is expected to exceed $110 billion by 2030, growing at a CAGR of more than 36% during 2025-2030.
The regional market landscape is distinct: North America accounted for 41.681 TP3T of global spending, while Asia-Pacific is expected to expand at a CAGR of 26.471 TP3T, making it the fastest growing region.
In this wave of globalization, Chinese industrial 3D printing enterprises present a unique path to the sea.
MoFang Precision's overseas experience is quite legendary. 2019, MoFang Precision displayed additive manufacturing equipment with a printing precision of up to 2 microns at an industrial exhibition in the U.S., which triggered onlookers.

Figure: Precision prototypes manufactured by Mofang Precision (source: internet data)
A foreign friend saw the print sample, one knee on the ground, close and carefully scrutinized for a long time. The breakthrough in precision allowed Mofang Precision to open up the market of developed countries.
In only 3 years, MoFang Precision has set up overseas branches in the United States, Japan, Germany, Britain and other places. In 4 years of going to sea, the products are exported to 35 countries, and the proportion of overseas sales reaches 50%.
SANDI Technology has chosen a different path. By mastering the four industrial-grade 3D printing technologies of SLS (Selective Laser Sintering), SLM (Selective Laser Melting), 3DP (Sand Printing), and BJ (Binder Jet), and exporting the equipment, SANDI TECH has precisely targeted the Eurasian market, where the demand for digital dentistry is strong and the price-performance ratio is sensitive.
Its overseas revenue soared from almost zero to $15% in a year, achieving a substantial breakthrough.
02 Path exploration: three sea lanes, four global playing styles
The paths of Chinese industrial 3D printing companies to the sea can be broadly categorized into three distinctive shipping lanes, and the success of SanDi Technology demonstrates the effectiveness of a hybrid model.
The first one is "technological conquest".
Mofang Precision relies on its self-developed "surface projection microstereolithography" technology to realize high-precision detail printing of 2 microns, and control the tolerance size in the range of +-10 microns. This technological breakthrough makes Mofang Precision the only company in the world to successfully provide high-precision additive manufacturing solutions.
Technological innovation has become the fulcrum for them to pry the global market.

Figure: Map of R&D and production of Mofang Precision equipment (Source: official website of Mofang Precision)
The second is "cost-disruptive".
Through supply chain consolidation, Intelligent Pie has been able to source display screens for light-curing 3D printing at a significantly lower price than the market price, and in 2019, they are launching the "Mars" series, which is the market's first device in the $300 range that combines 2K printing accuracy.
While the average pricing of domestic brands at the time was around $500, overseas brands were upwards of $1,000 USD.

Figure: ELEGOO DLP Light Curing 3D PrinterMARS 4 DLP (Source: ELEGOO website)
The third is "ecological networking".
Some companies have followed HP's model of building an Additive Manufacturing Network to enable localized production and rapid response by building a global manufacturing and service network, and Korall Engineering, along with partners such as HP, has achieved the ability to locally print and deliver spare parts in the oil and gas industry in a matter of days.
The fourth is a "technology + M&A hybrid".
SANDI Technology has taken a unique path combining technology and mergers and acquisitions. 2025, SANDI Technology acquired Shenzhen Shuanglong Dental Research Technology Co., Ltd, a company that specializes in high-end customized dentures. This move not only allows SANDI Technology to obtain the mature channels established by Shuanglong Dental Research covering more than 30 countries and regions in the world, such as America, Europe, Australia, Southeast Asia, etc., but also take over all of its international certifications and customer resources in one go, realizing the leapfrog development of the process of going abroad.

Figure: Titanium alloy bridge (Source: Shenzhen Shuanglong Dental Research)
03 Cracking the Dilemma: Challenges and Responses on the Way to the Sea
The road of industrial 3D printing to the sea is not a smooth one, and enterprises need to face a series of challenges.
Trade barriers are the primary challenge.
Against the backdrop of the continued increase in U.S. tariff policies, China's industrial-grade 3D printer companies are facing multiple challenges such as surging export costs, supply chain restructuring and limited market access.
Certification bottlenecks should likewise not be ignored.
"Flight hardware such as turbine nozzles or pressurized valves must comply with rigorous fracture toughness and fatigue testing," reports Mordor Intelligence, "and the current rulebook is written for subtractive machining; as a result, additive parts undergo redundant sample testing, extending schedules by as much as 18 months."
In this regard, through the merger and acquisition of Shuanglong Dental Research, SanDi Technology has obtained the European Union CE, U.S. FDA and China's Class II medical device certification, paving the way for products to travel the international market.
Intellectual property risks follow.
As a technology-intensive industry, 3D printing companies face a complex IP environment, especially in mature markets in Europe and the United States.
In the face of these challenges, companies that have successfully gone overseas have adopted a variety of coping strategies.
Localization of supply chain layout is an effective means to deal with trade barriers. The study suggests that Chinese enterprises can optimize global capacity allocation through the distributed layout model of "regional manufacturing centers + localized manufacturing units".
SANDI has implemented lean management in all aspects of production to ensure the reliability and consistency of product quality. In addition, the company has reached strategic cooperation with a number of international high-quality logistics service providers to customize safe and efficient transportation solutions for each order, fully guaranteeing the timeliness and integrity of global equipment output.
Internationalization of technical standards is the key to break through the certification bottleneck. Mofang Precision's innovative ability has been recognized by the Prism Award, an authoritative award in the global optoelectronic science and technology industry, and in March 2021, Mofang Precision became the first company in China to win the award, beating two well-known U.S.-listed companies.
Market diversification is a strategic choice to diversify risks. Intelligent Pie Europe and the United States users accounted for 92%, but at the same time also sell products to more than 70 countries and regions around the world.
SANDI Technology, on the other hand, has accurately cut into high-growth markets such as Turkey and Spain. In Turkey, for example, the scale of its dental industry is expected to reach 5 billion U.S. dollars in 2025, dental tourism contributes 70% share, of which the 3D printing denture equipment orders increased year-on-year up to 55%, the market opportunity is huge.
04 Future strategy: from "product to sea" to value to sea
As the global 3D printing market continues to mature, Chinese companies are upgrading their overseas strategies.
Supply chain strategy is shifting from pure export to global capacity placement.
"Regionalized production networks" and "technology localization strategies" have become important means of coping with changes in the global trade environment. Some leading companies have begun to strategically locate in emerging economies such as Southeast Asia, Central and Eastern Europe, and Latin America.
Technology development is showing a diversification trend.
Metal 2 micron high precision detail printing, and control the tolerance size in the range of +-10 micron, +-25 micron respectively.
Some of SANDI Technology's early equipment has been in continuous and stable operation for more than 20 years, which has earned it a very high level of trust in the market. The four core 3D printing technologies it has mastered can provide the mature technical assurance required for diversified manufacturing needs.
Market expansion extends from developed countries to emerging markets.
Asia Pacific has become the fastest growing region in the global 3D printing market, with the Chinese government's "Made in China 2025" policy driving the growth of local companies.
The business model has also evolved from single device sales to diversification.
Some organizations have begun to offer "print-by-the-hour" subscription services that combine maintenance, calibration and powder replenishment into a single invoice. This hybrid approach blurs the line between hardware and services, smoothing out revenue streams during macroeconomic cycles.
05 Future Outlook: From "Manufacturing to Overseas" to "Ecological Overseas"
The next stage of industrial 3D printing overseas will be the shift from product output to the construction of a global digital manufacturing ecosystem.
The digital supply chain is becoming a core competency.
Korall Engineering's approach heralds this trend - they identify key components, model modular systems, and automate the derivation of variants. These data sets are then made available to certified manufacturing partners via Korall's own Oktopus platform.
The transformation of servitization has become a value growth point.
The 3D printing services market is expected to outpace the hardware market at a CAGR of 25.21% from 2025 to 2030.Contract manufacturers such as Stratasys Direct Manufacturing, Materialise, and Protolabs utilize multi-site networks to distribute loads, allow customers to prototype in ten days and receive parts that meet ISO-13485 production standards.
A global collaborative network will be the ultimate form.
HP is connecting part requirements with its partner network through its Additive Manufacturing Network program. Similarly, Korall has partnered with HP, Assembrix and Sparely to implement a series of secure remote printing jobs.
Dozens of industrial-grade granular 3D printers are working 24/7 in an intelligent factory in Zhuhai. They are printing automotive parts and consumer products of different specifications according to orders from customers in Europe and North America.
On the workshop's electronic screen, a global production status map flashes in real time, marking manufacturing nodes spread across continents.
At the same time, SANDI's shipment list continues to grow with orders from Italy, Turkey, Spain and South Korea, witnessing the transformation of China's industrial 3D printing from technological catch-up to global leadership.

Zong Guisheng, founder of SANDI Technology, believes that from technological breakthroughs to global layout, we are redefining the position of Chinese manufacturing in the global industrial chain.
His eyes are reflecting the new chapter of China's industrial 3D printing overseas - that is not only the flow of products, but also the manufacturing paradigm, technical standards and industrial ecology of global integration. (Source: Zongguancun Public)
工業(yè)3D打印出海破局:從中國智造到全球制造最先出現(xiàn)在三帝科技股份有限公司。
]]>三帝科技祝賀第七屆亞洲粉末冶金國際會議成功舉辦最先出現(xiàn)在三帝科技股份有限公司。
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The 7th Asia Powder Metallurgy International Conference & Exhibition (APMA2025) was successfully held from October 19 to 22, 2025 in Qingdao, Shandong Province. Co-organized by the Powder Metallurgy Industry Technology Innovation Strategy Alliance (CPMA) and the Chinese Society for Metals (CSM), the conference brought together top experts and enterprise representatives in the field of powder metallurgy from home and abroad. BJ Binder Jet Metal/Ceramic Printer independently developed by SANDY Technology3DPTEK-J400PDr. Zong Guisheng, Director of 3D Printing Committee of Powder Metallurgy Industry Technology Innovation Strategy Alliance and Chairman of SANDI Technology, was awarded "Outstanding Contribution Award of Powder Metallurgy".


As an important participant of the conference, SANDI Technology was deeply involved in a number of agendas. Dr. Zong Guisheng served as the chairman of the Additive Manufacturing sub-forum of the conference and gave an invited report on "BJ Binder Jetting Manufacturing", sharing the cutting-edge practice of this technology in promoting the high efficiency and low cost of the powder metallurgy industry.

Dr. Zong Guisheng pointed out in the report that traditional powder injection molding faces pain points such as high mold costs, long development cycles and limited product sizes. Through binder jet (BJ) 3D printing technology, SANDI Technology has realized moldless manufacturing, rapid prototyping of complex structures and large-size parts production, effectively helping the industry to achieve cost reduction and efficiency. Currently, the technology has been applied on a large scale in 3C electronics, automotive, aerospace, AI chip cooling, liquid cooling system and other fields.


BJ Binder Jet Metal/Ceramic Printing System Enables Efficient Precision Manufacturing
SANDI Technology has systematically mastered a full set of key technologies of BJ binder jet metal/ceramic molding equipment, materials and processes. Its 3DPTEK-J160R/J400P/J800P series printing equipment, integrated with precise powder supply, high density powder laying and high precision inkjet control system, to effectively deal with the small particle size powder laying problems, support 400-1200dpi high-resolution printing, the highest molding accuracy of ± 0.1mm, the highest molding efficiency of 3600cc/h. The highest molding efficiency is 3600cc/h.

Figure: SANDY TECHNOLOGY BJ Binder Jet Metal/Ceramic Molding Printer 3DPTEK-J160R/J400P/J800P
In terms of material system, the company has developed more than 20 kinds of process formulations, such as water-based environmentally friendly and solvent-based high-efficiency type, covering a wide range of metal materials such as stainless steel, titanium alloy, high-temperature alloy, as well as ceramic and non-metal materials such as silicon carbide. Through systematic control of the degreasing and sintering process, the company has realized precise control of the shape and performance of the products, and the performance of the products meets and partially exceeds the international standards.


Based on the advantages of "high efficiency, low cost and no thermal stress" of BJ technology, SANDI has made important breakthroughs in the field of heat dissipation, successfully realizing the high-quality molding of copper-diamond, copper-silicon carbide and other composites, and the performance is better than the international standard of MIM. The company implements differentiated equipment strategy, for scientific research institutions and chip design enterprises, to provide scientific research equipment 3DPTEK-J160R, for rapid prototyping and thermal design verification; for liquid-cooled servers and other industrial users, to provide integrated industrial solutions (equipment + special powder / binder + process package), to help customers shorten the process development cycle of 60% or more.

SLM Laser Metal Printing Expands Technology Boundaries with Gradient Material Systems
In addition to binder jetting technology, SANDI Technology has also independently developed metal printing systems including SLM selective zone laser melting equipment AFS-M120/M400, gradient metal equipment AFS-M120X(T), and multi-material additive and subtractive material integration equipment AFS-M300XAS, etc., and completed a variety of stainless steel, titanium alloy, aluminum alloy, die steel, cobalt-chromium alloy, nickel-based alloy and other We have also completed the process development of various materials such as stainless steel, titanium alloy, aluminum alloy, mold steel, cobalt-chromium alloy and nickel-based alloy.

Among them, AFS-M120X(T) can realize the continuous gradient accurate powder supply of two or more metal materials, which is suitable for the research of composite metal material properties; AFS-M300XAS supports the gradient combination of up to four materials, and realizes the continuous gradient change in the horizontal direction, and material composition switching or gradient change in the vertical direction, which is promising for the development of high-throughput materials, aerospace, automotive, medical and mold processing, and other fields. It has broad prospects in the fields of high-throughput material development, aerospace, automotive, medical and mold processing, etc.
SANDI Technology always focuses on the synergistic development of industry, academia and research, and maintains close cooperation with Shenzhen Vocational and Technical University, Shenzhen Tsinghua University Research Institute, Shanghai Jiaotong University, University of Science and Technology of Beijing and other universities and scientific research institutes, and continues to promote the basic research and transformation of BJ technology in the materials, processes and applications, to help industrial molds, high-end cutting tools, 3C electronic precision components and complex large-size shaped ceramic products and other areas of large-scale application. The scale application of BJ technology.
[About SANDI TECHNOLOGY
SANDI Technology is a national high-tech enterprise and a "small giant" enterprise specializing in industrial-grade additive manufacturing (3D printing) equipment and rapid manufacturing services. The company has built a complete industrial chain covering technology research and development, equipment and material production, process support and manufacturing services, and is in a leading position in a number of core technologies such as binder jetting (BJ) in China, and is actively promoting the large-scale application of 3D printing in the fields of casting upgrading, advanced heat dissipation, and precision medical care.
三帝科技祝賀第七屆亞洲粉末冶金國際會議成功舉辦最先出現(xiàn)在三帝科技股份有限公司。
]]>三帝科技設備生產發(fā)貨忙 全力運轉保交付最先出現(xiàn)在三帝科技股份有限公司。
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It is reported that the 3DP sand printing equipments provided by SANDI Technology to many domestic manufacturing enterprises in Liaoning, Hebei, Henan, Jiangsu, Guizhou and other places have been sent out successfully in recent days. When the equipment arrives at the customer's site, the professional technical team of SANDI Technology will follow up the assembly, debugging and acceptance work at the first time to ensure that the equipment is put into production quickly and operates stably. At present, SANDI's equipment and services have covered 26 provinces (including autonomous regions and municipalities directly under the Central Government), widely serving the main foundry industry belt and intelligent manufacturing clusters, and continuing to provide power for the transformation and upgrading of customers.

At the same time, the overseas market expansion has achieved remarkable results. A number of 3D printing equipments sent to Korea, Turkey, Italy, France, Spain and other regions have been successfully shipped and are about to be delivered. At present, SANDI's products and services have covered many key markets in Europe and Asia, such as East Asia, South Asia, Western Europe, Eastern Europe, etc. The globalized operation system is becoming more and more perfect, showing strong international competitiveness.

With more than 30 years of experience in industrial-grade 3D printing, SANDI Technology has deep experience in powder laying technology and stable and reliable equipment. After years of market verification, the 3D printing equipment purchased by some users in the early stage of the company's business has been in stable operation for more than 20 years. The company also masters selective laser sintering (SLS), selective laser melting (SLM), sand 3D printing (3DP) and binder jetting (BJ) four core 3D printing technology, its "3DP + SLS" composite sand process has been selected by the Ministry of Industry and Information Technology of the typical application of additive manufacturing scenarios, can provide mature technical support for the diversified manufacturing needs. It can provide mature technology guarantee for diversified manufacturing needs.

In the production process, SANDI Technology comprehensively implements lean management, continuously optimizes the process of equipment assembly and commissioning, and ensures the reliability and consistency of product quality while improving production efficiency by strengthening cross-departmental collaboration and standardized on-site operations. All key components are strictly inspected and qualified before entering the assembly, realizing the whole process of quality traceability and precise control from parts to the whole machine.

In the delivery process, the company strictly implements the factory verification mechanism, the relevant person in charge checks and inspects the equipment one by one according to the "Application for Equipment Factory Permit", and carries out special marking and explanation for the customer's personalized needs, so as to ensure that the equipment is delivered accurately and in good condition. Through efficient cross-departmental collaboration and real-time information transfer, the company realizes seamless connection from production to delivery, and continues to consolidate the advantages of efficient delivery.

SANDI Technology not only provides high-performance equipment, but also focuses on full-cycle services. We provide comprehensive hands-on training and process guidance to our customers through our 3D Smart Manufacturing Centers throughout the country. Through the after-sales team in Beijing, Shaanxi, Hebei, Henan, Guangxi, Shandong, Anhui and other regions to provide timely response and nearby service, effectively guarantee the continuous and stable operation of customer equipment. At the same time, the company actively promotes market synergy and resource sharing to help customers expand business opportunities and enhance market competitiveness.
In addition, SANDY Technology attaches great importance to the professional capacity building of the team, through regular training and production coordination mechanism, to continuously improve the assembly efficiency and product quality. The company has reached strategic cooperation with a number of international high-quality logistics service providers to customize safe and efficient transportation solutions for each order, fully guaranteeing the timeliness and integrity of global equipment output.
Under the background of accelerated intelligent and digital transformation of the global manufacturing industry, SANDY Technology, relying on the three-in-one synergistic innovation system of "Guoqian Science and Technology Research Institute, post-doctoral workstation, and enterprise R&D team", continuously breaks through the key technologies, optimizes the performance of the products, and continues to improve the international marketing and service network and enhance the overseas localized service capability, to provide high-performance 3D printing equipment and rapid manufacturing integrated solutions for global customers with global vision and international standards. Global vision and international standards to provide global customers with high-performance 3D printing equipment and rapid manufacturing solutions to empower the high-quality development of the manufacturing industry.
[About SANDI TECHNOLOGY
(3D Printing Technology, Inc.) is a national high-tech enterprise and a "small giant" enterprise specializing in industrial-grade additive manufacturing (3D printing) equipment and rapid manufacturing services. It has been invested by many organizations, including Jinko Junchuang, CICC Capital, Zhongke Haichuang, Become Capital, Beijing New Materials Fund, and SINOMACH Fund, etc. The company has been invested by the Ministry of Economic Affairs of the People's Republic of China. Aiming at cost reduction, efficiency improvement and quality improvement, the company has built a complete industrial chain covering the R&D and production of 3D printing equipment and materials, process technology support and rapid finished product manufacturing. Widely served in aerospace, electric power and energy, ship pumps and valves, automotive, rail transportation, industrial machinery, 3C electronics, rehabilitation and medical care, education and scientific research, sculpture, culture and creativity and other fields.
三帝科技設備生產發(fā)貨忙 全力運轉保交付最先出現(xiàn)在三帝科技股份有限公司。
]]>3D打印如何解決鑄造高報廢率問題:革新鑄造工藝,提升品質與效率最先出現(xiàn)在三帝科技股份有限公司。
]]>Casting defects are the direct cause of high scrap rates. These defects are not accidental, but are dictated by the physical and process limitations inherent in conventional casting processes.
firstlystomatogether withshrinkage. Porosity mainly originates from the involvement or inability to effectively discharge gases (e.g. hydrogen, mold outgassing) in the liquid metal during the pouring and solidification process. When the dissolved gases in the liquid metal are released due to reduced solubility during cooling and solidification, bubbles will form inside or on the surface of the casting if they are not discharged in time. Related to this is shrinkage, which is a natural phenomenon of volume contraction of the metal during solidification. If the cooling system is not properly designed, resulting in local mold temperature is too high, or insufficient complementary shrinkage, it will form internal voids or depressions, the so-called shrinkage holes.
Next.sandwichedtogether witherror type (math.). In conventional sand casting, sand molds and sand cores usually need to be assembled and bonded after being made from multiple pieces separately. In this process, any tiny rupture of the sand core or improper bonding may lead to sand particles being caught in the metal liquid, forming sand entrapment defects. In addition, if the mold parting surface or the sand core is not positioned accurately, it may also lead to the casting of the upper and lower parts of the misalignment of the mis-shape defects.
endcold storagetogether withcrackles. When the fluidity of the metal liquid is poor, the pouring temperature is too low, or the runner design is narrow, the two metal streams are solidified without being fully integrated at the leading edge, leaving a weakly connected cold segregation. And during cooling and solidification, if there are uneven stresses within the casting, thermal cracks may occur during shrinkage.
Another core pain point of the traditional casting process is its mold manufacturing process. Traditional wood or metal core box manufacturing is a labor-intensive, highly skilled worker-dependent process with long lead times and significant costs. Any minor design change means that the mold needs to be rebuilt, resulting in high additional costs and weeks or even months of waiting time.
This over-reliance on physical molds also fundamentally limits the design freedom of castings. Traditional mold-making processes are unable to mold complex internal runners and hollow structures in one piece, which must be disassembled into multiple independent sand cores and then assembled by complex tooling and labor. 2. This process limitation forces designers to compromise and sacrifice part performance for manufacturability, such as simplifying cooling channels to accommodate drilling processes that do not allow for optimal cooling.
To summarize, the high scrap rate of traditional casting is not an isolated technical problem, but a product of its core processes. The traditional "physical trial and error" mode makes the foundry in the discovery of defects, need to go through a long process of mold modification and retesting, which is a high-risk, inefficient cycle. 3D printing's revolutionary value is that it provides a "moldless" solution, fundamentally reshaping the entire production process, will be the traditional "physical trial and error" mode, will be the traditional "physical trial and error" mode, will be the traditional "physical trial and error" mode, will be the traditional "casting" high scrap rate is not an isolated technical problem, but its core process products. The revolutionary value of 3D printing is that it provides a "moldless" solution that fundamentally reshapes the entire production process, transforming the traditional "physical trial-and-error" model into a "digital simulation validation" that puts the risk in front of the process, thus eliminating most of the causes of scrap at the source.
The core advantage of 3D printing is its "moldless" production method, which allows it to bypass all of the mold-related challenges inherent in traditional casting, thus radically reducing scrap rates.
Directly from CAD to sand mold. Binder Jetting in Additive Manufacturing is the key to making this happen. It works by precisely spraying liquid binder onto thin layers of powder (e.g. silica sand, ceramic sand) from an industrial-grade printhead based on a 3D CAD digital model. By bonding layer by layer, the 3D model in the digital file is constructed in the form of a solid sand mold or sand core. This process completely eliminates the need to rely on physical molds. Because there is no need for lengthy mold design and manufacturing, the mold-making cycle can be shortened from weeks or even months to hours or days, enabling "print-on-demand" and rapid response to design changes, dramatically reducing up-front investment and trial-and-error costs.
One-piece molding and complex structures. 3D printing's layered manufacturing approach gives unprecedented design freedom. It is able to mold complex sand cores that would traditionally have to be split into multiple parts, such as the meandering runners inside an engine, into a single monolithic piece. Not only does this simplify the casting process, but more importantly, it completely eliminates the need for core assembly, bonding and misalignment, thus eradicating common defects such as sand entrapment, dimensional deviations, and misshaping caused by such issues.
The value of 3D printing goes beyond "moldlessness" itself. It elevates the manufacturing process to a whole new digital dimension, allowing data to be verified and optimized before physical manufacturing, turning "after the fact" into "before the fact".
Digital Simulation and Design. During the digital design phase prior to 3D printing, engineers can use advanced Finite Element Analysis (FEM) software to perform accurate virtual simulations of the pouring, make-up shrinkage and cooling processes. This makes it possible to anticipate and correct potential defects that could lead to porosity, shrinkage or cracks before actual production. For example, by simulating the flow of the liquid metal in the runners, the design of the pouring system can be optimized to ensure smooth filling and effective venting. This digital foresight greatly improves the success rate of the first trial run and guarantees casting yields at the source.
Excellent sand properties. 3D printed sand molds, due to their layer-by-layer construction, can achieve uniform densities and air permeability that are difficult to achieve with traditional processes. This is crucial for the casting process. Uniform gas permeability ensures that gases generated inside the sand mold can escape smoothly during the pouring process, significantly reducing porosity defects caused by poor venting.
Cooling with shape. Conformal cooling technology is another revolutionary application of 3D printing in the field of casting molds. Mold inserts manufactured through metal 3D printing have cooling runners that can be designed to exactly mimic the surface contours of the casting. This achieves fast, uniform cooling, significantly reducing deformation and shrinkage due to uneven shrinkage, thus dramatically reducing the scrap rate. According to data, molds with follow-through cooling can reduce injection cycle times by as much as 70%, while significantly improving product quality.
From "physical trial and error" to "digital foresight". The core contribution of 3D printing is to transform the traditional foundry model of "trial and error" into "anticipatory manufacturing". It enables foundries to perform numerous iterations in a digital environment in a cost-effective manner, which is a fundamental shift in mindset and business process. This "hybrid manufacturing" model makes 3D printing easier to adopt by traditional foundries and enables the most efficient production. For example, 3D printing can be used to create the most complex and error-prone sand cores, and then combined with sand molds made using traditional methods to "build on the strengths".
As a pioneer and leader in the field of additive manufacturing in China, 3DPTEK provides strong "hard power" support for the foundry industry with its self-developed core equipment.
The company's core product lines are3DP Sand Printerthat highlights its leadership in technology. Flagship devices3DPTEK-J4000With an extra-large molding size of 4,000 x 2,000 x 1,000 mm, it is highly competitive on a global scale. This extra-large size allows large, complex castings to be molded in one piece without the need for splicing, further eliminating potential defects caused by splicing. At the same time, for example
3DPTEK-J1600PlusDevices such as these offer high accuracy of ±0.3 mm and efficient printing speeds, ensuring that superior quality is achieved while producing quickly.
In addition, SANTI Technology'sSLS (Selective Laser Sintering) Equipmentseries, such asLaserCore-6000The machines are also excellent in the field of precision casting. This series of equipment is particularly suitable for the manufacture of wax molds for investment casting, providing a more accurate solution for high-end, fine parts in aerospace, medical and other fields.
It is worth mentioning that SANDI Technology is not only an equipment supplier, but also an expert in material and process solutions. The company has developed more than 20 binders and 30 material formulations, compatible with cast iron, cast steel, aluminum, copper, magnesium and other casting alloys. This ensures that its equipment can be seamlessly integrated into a wide range of casting applications, providing customers with comprehensive technical support.
The competitive advantage of SANDI Technology lies not only in its hardware, but also in the integrated solutions it provides along the whole chain. The company has a strong "Trinity" innovation system - "research institute + post-doctoral workstation + R&D team". This model ensures continuous technology iteration and innovation momentum, and its accumulation of more than 320 patents is a strong proof of its technological leadership.
The company offers a "one-stop" turnkey service from design and 3D printing to casting, machining and inspection. This vertically integrated model greatly simplifies the customer's supply chain management, reduces communication costs and risks, and allows the foundry to focus on its core business.
Successful cases are the most persuasive tool to convince potential customers. Through a series of real-world projects, SANDY Technology has quantified the significant business value that 3D printing technology brings.
in order toAutomotive water-cooled motor housingAs an example, this case perfectly demonstrates how the 3DP sand casting process solves the one-piece molding problem of "large size, thin wall, complex spiral cooling channels". 21. The successful application of this technology in the field of new energy vehicles has proved its significant advantages in the production of high-performance, complex structure castings.
On the otherIndustrial pump bodyIn the case of SANDI, SANDI adopted the hybrid manufacturing model of "3DP outer mold + SLS inner core". This complementary strategy shortened the production cycle by 80%, and at the same time improved the dimensional accuracy of the castings to CT7 level, which perfectly proved the powerful effect of the hybrid manufacturing mode.
The joint venture project with Xinxin Foundry provides the strongest business argument. By introducing 3D printing technology, the foundry achieved a turnover increase of 1,35%, doubled its profitability, halved its lead time and reduced its costs by 30%. This series of quantitative data provides irrefutable proof of the return on investment of 3D printing technology in the foundry industry.
The following table visualizes how 3D printing can address the pain points of the foundry industry on both a technical and business value level:
| Casting defects or pain points | Causes and limitations of traditional crafts | 3D Printing Solutions and Value |
| stoma | Poor mold venting; liquid metal entrapped in gas | Uniform, controlled sand permeability; digital simulation optimizes pouring system |
| shrinkage | Uneven cooling; inadequate retraction | Predictive optimization by numerical simulation; uniform cooling by shaped cooling channels |
| Sandwich, Mis-shape | Multi-core assembly, bonding and misalignment; parting face fit errors | One-piece molding of complex sand cores eliminates assembly; no physical parting surfaces required |
| High molding costs | Requires physical molds, highly skilled labor, long lead times | Mold-less production; print directly from CAD files, manufacture on demand |
| Inefficiency and long lead times | Long mold making; repeated trial and error | Reduced cycle time of 80%; rapid iterative design possible; print on demand |
| Increased business value | Low margins and erratic delivery | Turnover up 1,35%, margins doubled; costs down 30% |
3D printing technology is leading the foundry industry from the traditional "manufacturing" to "smart manufacturing" fundamental transformation. According to the relevant report, the scale of China's additive manufacturing industry continues to grow at a high rate, and in 2022 it will exceed RMB 32 billion. This data clearly shows that digital transformation has become an irreversible industry trend.
In the future, 3D printing will be deeply integrated with artificial intelligence (AI), IoT and other technologies to achieve full automation and intelligent management of production lines. Foundries can use AI algorithms to optimize casting parameters and IoT sensors to monitor the production process in real time, thus further improving yield rates and production efficiency.
In addition, the unique advantages of 3D printing in realizing complex lightweight design will help automotive, aerospace and other downstream industries to improve product performance and reduce energy consumption, which is a perfect fit for the requirements of global sustainable development. 3D printing's on-demand production mode and extremely high material utilization (can be recycled more than 90% unbonded powder), also significantly reduces the generation of waste, for the casting industry to bring the environmentally friendly development path for the foundry industry.
concluding remarks 3D printing is not the end of casting, but its innovator. It gives the traditional foundry industry unprecedented flexibility, efficiency and quality assurance through its two core advantages of "moldless" and "digital". It enables foundries to free themselves from the plight of high scrap rates and enter a new era of greater efficiency, competitiveness and embrace of innovation. For any foundry seeking to stand out in a competitive market, embracing 3D printing technology, represented by SanDi Technology, is no longer an optional choice, but a necessary path to the future.
3D打印如何解決鑄造高報廢率問題:革新鑄造工藝,提升品質與效率最先出現(xiàn)在三帝科技股份有限公司。
]]>3D打印如何通過優(yōu)化內部結構來消除鑄件縮孔最先出現(xiàn)在三帝科技股份有限公司。
]]>Eliminating shrinkage holes has always been a complex challenge for foundries and engineers, with traditional methods often relying on experience and adjusting mold design, pouring systems and cooling processes through trial and error . However, with the advent of additive manufacturing technologies, especially industrial-grade sand 3D printing, casting design and production have been revolutionized, providing unprecedented new ways to completely solve shrinkage problems.
To understand how 3D printing solves problems, it is first necessary to deeply analyze the pain points of traditional casting. The main reasons for shrinkage formation can be attributed to two things:
In conventional casting, molds and cores are manufactured with physical tools whose geometry is limited by machinability and releaseability. For example, the holes drilled for cooling water paths can only be straight lines. . This makes it difficult for engineers to design complex, curved make-up shrinkage channels or follow-through cooling channels inside the mold to precisely control the solidification process, thus increasing the risk of shrinkage defects The
The core strengths of industrial sand 3D printers areDesign Freedomcap (a poem)No mold productionIt prints sand molds and cores layer by layer directly from 3D CAD files. . This characteristic radically breaks through the geometric limitations of conventional processes and provides several powerful means of eliminating shrinkage as follows:
Using 3D printing technology, engineers can design the optimal make-up shrinkage system inside the mold without having to consider machinability.
For the molds themselves, 3D printing can be equally revolutionary. ByConformal cooling(conformal cooling) technology, which allows the design of cooling channels inside the mold that match the surface contour of the casting. The
The digital workflow of 3D printing provides engineers with valuable opportunities for "trial and error" before going into production. The
The use of 3D printing technology to solve the problem of casting shrinkage, bringing not only the improvement of product quality, but also a series of chain of business value:
Casting shrinkage is not an isolated technical problem, but the traditional casting process in the face of complex design and high-precision requirements of the systematic challenges exposed. Industrial sand 3D printers, with their unique technological advantages, offer a "cure" for the problem at its source. It eliminates the risk of shrinkage by giving engineers unprecedented design freedom, enabling them to build optimized internal structures and cooling systems. The
For the pursuit of excellent quality, efficient production and cost optimization of modern foundry enterprises, 3D printing is no longer dispensable "additional options", but to promote industrial upgrading, in the fierce competition in the market to win the first chance of the key technology. It is not just a piece of equipment, but also to the "digital casting" bridge to the future, so that the former "casting problems" to be solved! The
3D打印如何通過優(yōu)化內部結構來消除鑄件縮孔最先出現(xiàn)在三帝科技股份有限公司。
]]>2025 砂型 3D 打印機選型指南:根據鑄件尺寸、材質選對設備參數(shù)最先出現(xiàn)在三帝科技股份有限公司。
]]>The size of the casting is a central factor in determining the specification of a sand 3D printer, which needs to be selected with a balance between current needs and future developments:
Different casting materials (e.g. cast iron, cast aluminum, cast steel) have different requirements for sand strength, air permeability and gas generation, which need to be matched with the corresponding equipment parameters and material technology:
Through the above selection strategy based on casting size and material, combined with the comprehensive advantages of 3DPTEK sand 3D printers, enterprises can accurately match the parameters of the equipment to achieve a high degree of compatibility between equipment performance and production needs, and at the same time improve the quality of castings, reduce production costs and enhance market competitiveness.
2025 砂型 3D 打印機選型指南:根據鑄件尺寸、材質選對設備參數(shù)最先出現(xiàn)在三帝科技股份有限公司。
]]>工業(yè)級蠟模 3D 打印機:2025 年大型鑄造全指南,縮短 80% 周期 + 提升精度方案最先出現(xiàn)在三帝科技股份有限公司。
]]>Industrial-grade wax mold 3D printers are based onSelective laser sintering (SLS) TechnologyIt is an industrial machine for the production of high-precision wax molds made of casting wax powder / wax-like powder, which are fused layer by layer and can be used directly for lost wax investment casting. It has significant advantages over the traditional wax molding process and is especially suitable for large casting scenarios (part sizes above 500 mm):
| comparison dimension | Industrial Wax Mold 3D Printer | Traditional wax molding process (handmade / CNC) |
| production cycle | 3-7 days (large wax models) | 2-4 weeks |
| Dimensional accuracy | ±0.1mm | ±0.5-1mm |
| Complex structure realization | Easy printing of internal cooling channels, thin-walled honeycomb structures | Multiple sets of wax molds need to be disassembled and are prone to assembly errors. |
| labor cost | Automated printing, one person can operate multiple machines | Dependence on skilled tradesmen, high labor costs 300% |
| Material utilization | 90% above (unsintered wax powder recyclable) | 60%-70% (cutting / manual waste) |
| Design Iteration | CAD files can be reprinted within a few hours after modification. | Need to remake the mold, long cycle time |
It takes 3 weeks to make a wax mold of a large automotive engine block using traditional processes, but an industrial-grade 3D printer can do it in just 3 days. An aerospace foundry used LaserCore-5300 to print a wax model of a turbine blade, from design to finished product in 48 hours, shortening 80% compared with the traditional process, and compressing the trial production cycle of a new product from 3 months to 1 month, thus seizing the first opportunity in the market.
Industrial-grade wax mold 3D printer has an accuracy of ±0.1mm and surface finish Ra≤1.6μm, which can reduce the casting post-treatment process. Due to the large error of wax mold made by traditional process, the casting scrap rate is more than 15%; while the 3D printed wax mold reduces the scrap rate to below 5%, and a foundry produces large valve castings and reduces the loss of scrap by 800,000 RMB annually.
No need to consider "mold release" issues, allowing for designs not possible with conventional processes, especially for high-end manufacturing:
Despite the high initial investment ($50,000+) for an industrial-grade wax-molded 3D printer, the cost advantage is significant when calculated over the full lifecycle:
The industrial wax 3D printing process is highly automated and does not require complex human intervention. The core steps are as follows (for example, wax molding of a large turbine blade):
Large casting parts (such as automotive engine blocks, aerospace frames) with dimensions of 500-1000mm, need to choose the molding space ≥ 500 × 500 × 500mm model:
SLS technology sintered wax powder by laser, the wax molds have high density (≥0.98g/cm3) and high strength (flexural strength ≥15MPa), which can withstand the external force during ceramic paste coating and handling to avoid deformation. Wax molds made by other technologies (e.g. FDM) have low strength, are easily damaged and are not suitable for large-scale casting.
Based on industry feedback and actual application cases, the following 3 models in 2025 are outstanding in the large casting field, covering entry to high-end scenarios:
| models | Molding space (mm) | Type of technology | accurate | Molding rate | Applicable Scenarios | Core Advantages |
| AFS-500 (entry level) | 500 x 500 x 500 | SLS | ±0.1mm | 80-150cm3/h | Industrial tools, small and medium-sized castings (up to 500mm) | Cost-effective, low power consumption (15KW), suitable for small and medium-sized foundry trial production |
| LaserCore-5300 (mid- to high-end) | 700 x 700 x 500 | SLS | ±0.1mm | 150-250cm3/h | Aerospace turbine blades, automotive parts (500-700mm) | Rapid iteration, stable accuracy, suitable for multi-material printing |
| LaserCore-6000 (high-end) | 1050 x 1050 x 650 | SLS | ±0.1mm | 250-300cm3/h | Large automotive engine blocks, aerospace frames (700-1000mm) | Extra large molding space, high efficiency of mass production, suitable for high production foundries |
Small and medium-sized foundries can purchase entry-level models (e.g., AFS-500) for wax molding of high value-added parts (e.g., precision valves), quickly recoup their costs through high-margin orders, and then upgrade to higher-end models after 1-2 years.
By choosing the wax powder recycling equipment with automatic screening and drying function, the unsintered wax powder can be reused directly after treatment, and the material utilization rate is increased from 90% to more than 95%, which saves 200,000 yuan of material cost per year.
Choose a service provider that provides free training (such as AFS brand), 1 to 1 teaching operators to master the daily operation of the equipment, troubleshooting, to ensure the normal operation of the equipment.
In the increasingly competitive large-scale foundry industry, "high precision, fast cycle time, low cost" has become the core competitiveness -- industrial-grade wax mold 3D printers help foundries break through the limitations of traditional processes by shortening the cycle time by 80%, increasing the accuracy by 5 times, and reducing the cost by 40% in the long run. to help foundries break through the limitations of traditional processes.
In 2025, the commercialization of models such as the LaserCore series will provide a fast track from design to wax mold for industries such as aerospace, automotive and heavy machinery. For foundries, choosing the right industrial-grade wax 3D printer will not only reduce costs and increase efficiency, but also unlock difficult casting orders and secure a place in high-end manufacturing - the core value of industrial-grade wax 3D printing in the future of the foundry industry.
工業(yè)級蠟模 3D 打印機:2025 年大型鑄造全指南,縮短 80% 周期 + 提升精度方案最先出現(xiàn)在三帝科技股份有限公司。
]]>4 米級大型砂型鑄造 3D 打印機:2025 年解鎖大型鑄件制造,縮短 80% 周期 + 降本方案最先出現(xiàn)在三帝科技股份有限公司。
]]>Traditional large-scale sand mold manufacturing (size over 2 meters) needs to go through "mold making - sand core disassembly - manual assembly", there are difficult to solve the pain points, but 4-meter sand 3D printing through the "integrated molding + digital process" to achieve a comprehensive breakthrough. process" to realize a comprehensive breakthrough:
| Type of pain point | Status of traditional crafts | 4-Meter Sand 3D Printing Solution |
| long lead time | 4-8 weeks to produce a 4-meter sand mold (2-4 weeks for molding alone) | 2-5 days to complete the entire sand mold printing, full cycle time reduction 80% |
| Structural limitations | Complex internal channels, topology optimization structure requires more than 10 groups of sand cores to be disassembled, which is prone to assembly errors. | Print complex structures in one piece, no need to disassemble, error ≤ 0.3mm |
| high cost | Large metal molds cost over $500,000 and require 10 people/day for manual assembly. | No mold costs, automated printing reduces 80% labor |
| High scrap rate | Sand core splicing gaps lead to casting defects, scrap rate 15%-20% | Seamless sand molding + simulation optimization to reduce scrap rate to below 5% |

3DPTEK-J4000 As a benchmark equipment in the industry, it is not a simple enlargement of a small printer, but an exclusive design for large-scale sand manufacturing with the following core parameters:


Traditional 4-meter sand molding equipment needs to be fixed large sand box, a single print needs to be filled with tens of tons of sand, the cost is extremely high. And 3DPTEK-J4000 A breakthrough was achieved with the "Sandless Flexible Area Molding Technology":
It takes 6 weeks to make a 4-meter engine block sand mold by traditional process, but 3DPTEK-J4000 takes only 3 days to finish printing, and the whole cycle from design to casting delivery is compressed from 3 months to 1 month. A heavy machinery company used it to make large gearbox shell sand mold, new products on the market 2 months ahead of schedule, to seize a share of 30% market segment.
No need to consider the constraints of "stripping" and "splicing" of conventional processes, making it possible to accomplish difficult designs:
Despite the high initial investment in the equipment, the cost advantage is significant when calculated over the full life cycle:
The 4-meter molding space not only prints large sand molds, but also allows for the nested mass production of small parts:
Global environmental regulations are tightening (e.g., China's "dual carbon" policy, EU carbon tariffs), and 4-meter sand 3D printing meets environmental needs through two major technologies:
The success of 4-meter sand 3D printing requires not only high-quality equipment, but also a complete ecological support. 3DPTEK provides "end-to-end" solutions to reduce the difficulty of enterprise transformation:
3DPTEK has started the research and development of 6-meter-class sand printer, which can realize the whole printing of "8-meter-long ship propellers" and "10-meter-diameter nuclear power equipment shells" in the future, and completely eliminate the defects of large casting splicing.
Integrated AI system for automated completion:
The future equipment can realize "sand + metal powder" composite printing, printing high-temperature-resistant metal coatings on key parts of the sand mold (e.g., the sprue), adapting toTitanium alloy, ultra-high strength steelRefractory alloy casting, expanding the application in the field of high-end equipment.
For heavy manufacturing enterprises, 4-meter-class large sand casting 3D printer is no longer a "technological novelty", but a "necessity to enhance competitiveness" - it breaks the traditional process of It breaks the size and cycle time limitations of traditional processes, and realizes the triple breakthrough of "large-scale + complexity + low cost".
The commercialization of 3DPTEK-J4000 and other equipment has provided a fast track from design to casting for automotive, aerospace, industrial machinery and other industries. In the future, with the research and development of 6-10 meter-class equipment and the integration of AI technology, large casting manufacturing will enter a new stage of "full digitalization, zero defects and greening", and the enterprises that take the lead in laying out this technology will have an absolute advantage in the market competition.
4 米級大型砂型鑄造 3D 打印機:2025 年解鎖大型鑄件制造,縮短 80% 周期 + 降本方案最先出現(xiàn)在三帝科技股份有限公司。
]]>砂型 3D 打印技術:2025 年重塑金屬鑄造行業(yè),縮短 80% 周期 + 降本方案解析最先出現(xiàn)在三帝科技股份有限公司。
]]>Sand 3D printing is based onPrinciples of Additive ManufacturingThis is an industrial technology that directly transforms digital CAD models into solid sand molds / cores. Instead of the traditional "mold-making - sand-turning" process, the sand mold is formed by laying sand layer by layer on the printer and curing it by spraying a binder. The core process isBinder jetting technologyThe J1600Pro, J2500, and J4000 models from 3DPTEK, for example, offer significant advantages over conventional molding:
| comparison dimension | Sand 3D Printing | Traditional mold making process |
| production cycle | 24-48 hours | 2-4 weeks |
| Complex structure realization | Easy printing of internal channels, thin-walled parts | Difficult to realize, need to split multiple sand cores |
| Tooling Costs | No need for physical molds, cost is 0 | Customized wood / metal molding required, high cost |
| Material utilization | 90% or more (uncured sand can be recycled) | 60%-70% (much cutting waste) |
| Design Flexibility | Supports real-time modification of CAD models for fast iteration | Modification of the design requires re-modeling and long lead time |
While traditional processes take 2-4 weeks to produce complex sand molds (e.g. pump bodies, turbine casings), sand 3D printing takes only 1-2 days. Especially suitable forPrototype molding, small batch customization, emergency spare parts productionScenario -- A foundry uses the 3DPTEK J1600Pro to print sand molds of pump bodies from design to delivery in just 36 hours, a reduction of 80% compared to the traditional process, helping to bring products to market 2 weeks earlier.
Sand 3D printing eliminates the need for "mold release" issues, making it easy to create designs that would be impossible with traditional processes:
Despite the high initial investment in sand 3D printers, the cost advantage is significant when calculated over the full life cycle:
As global environmental regulations tighten (e.g., the EU REACH standard), sand 3D printing meets the need for environmental protection through two main technologies:
Sand 3D printing (binder jetting technology) is a simple, highly automated process that requires no complex human intervention, with the following core steps:
3DPTEK, as an industry leader, has introduced several models of sand printers covering small to very large casting needs with the following core parameters:
| models | Print size (L × W × H) | layer thickness | Applicable Scenarios | Suitable for casting alloys |
| 3DPTEK-J1600Pro | 1600×1000×600mm | 0.26-0.30mm | Small and medium-sized sand molds (e.g., motor housings, small pump bodies) | Aluminum, cast iron |
| 3DPTEK-J2500 | 2500×1500×800mm | 0.26-0.30mm | Medium to large sand molds (e.g. gearbox housings, turbine housings) | Steel, copper alloys |
| 3DPTEK-J4000 | 4000×2000×1000mm | 0.28-0.32mm | Oversized sand molds (e.g. ship propellers, large valves) | Stainless steel, specialty alloys |
Core AdvantagesAll models support "sand + binder" custom formulations, and 3DPTEK has over 30 proprietary formulations to match the needs of different alloys (e.g., aluminum alloy casting for low-viscosity binder, steel casting for high-temperature-resistant sand).
From 1.6-meter compact machines (J1600Pro) to 4-meter ultra-large machines (J4000) forSmall batch trial production to large scale mass productionThe J1600Pro is available for small and medium-sized foundries with a capacity of 5-8 sand molds per day, and the J4000 is available for large foundries with a capacity of 2-3 oversized sand molds per day.
3DPTEK has more than 30granule – Exclusive formulation for bonding agents, optimized for different alloys:
Provide "equipment + software + service" full-process support:
The equipment has been landed in more than 20 countries in Europe, Asia, the Middle East, etc., and the after-sales response speed is fast:
The future of sand 3D printing will be integratedAI Design Optimization System-- Input casting parameters (material, size, performance requirements), AI can automatically generate the optimal sand structure, while real-time monitoring of the printing process, by adjusting the amount of binder injection, sand laying thickness, to avoid cracks, uneven density and other problems in the sand, to achieve "zero defects " production.
exploit (a resource)Automatic Sand Recovery SystemIn addition, the uncured sand and old sand will be screened, decontaminated and recycled, and the material utilization rate will be increased from the current 90% to more than 98%, which further reduces the material cost and meets the requirements of the "Double Carbon" policy.
The future of sand 3D printers will enable "sand + metal powder" composite printing - printing metal coatings on critical parts of the sand model (e.g., gates) to improve the sand model's high-temperature resistance, and to accommodateUltra-high strength steel, titanium alloyRefractory alloys such as casting, expanding the application in the field of aerospace, high-end equipment.
In the increasingly competitive metal casting industry, "fast response, complex structure, green cost reduction" has become the core competitiveness - sand 3D printing by shortening the cycle time of 80%, realizing difficult designs, long-term cost reduction 40% and help foundries break through traditional process constraints.
3DPTEK, as a leading company in the field of sand 3D printing, provides customized solutions for foundries of different sizes through multiple models of equipment, exclusive material formulations, and integrated technical support. Whether in the automotive, aerospace, industrial machinery or energy sectors, choosing sand 3D printing means choosing the double advantage of "cost reduction and efficiency + technological leadership", which is also the core way for foundries to survive in 2025 and beyond.
砂型 3D 打印技術:2025 年重塑金屬鑄造行業(yè),縮短 80% 周期 + 降本方案解析最先出現(xiàn)在三帝科技股份有限公司。
]]>工業(yè)級 SLS 3D 打印機:復雜零件精密制造的革新方案,2025 年技術解析與行業(yè)應用最先出現(xiàn)在三帝科技股份有限公司。
]]>Industrial-grade SLS 3D printers use a high-powered laser toNylon, composite polymers, specialty casting sands/waxesThe industrial-grade equipment for selective fusion of powder materials and other materials to build up solid 3D parts layer by layer. Its core technical characteristics are significantly different from desktop-level SLS equipment:
| comparison dimension | Industrial Grade SLS 3D Printer | Desktop SLS Devices |
|---|---|---|
| Molding space | Large (some models up to 1000mm) | few |
| production efficiency | High, supports mass production | Low, mostly single-piece printing |
| Quality of parts | Stable and meets mass production standards | Lower precision, suitable for prototyping |
| Material compatibility | Hiro (engineering plastics, casting sand, wax) | Narrow (mostly basic nylon powder) |
In addition, industrial-grade SLS printing requires no support structure (unsintered powder naturally supports the part), making it easy to accomplish things that are impossible with traditional processes.Complex internal channels, lightweight lattice structures, active componentsAll-in-one molding.
In the aerospace, automotive, medical, foundry and other fields, industrial-grade SLS technology has become the key to improve productivity and innovation, the core advantages are reflected in the following four points:
No support structure is required, allowing engineers to designComplex internal cavities, integrated moving parts, topology-optimized lightweight structure-- such as hollow structural parts in aerospace and complex runner components in automotive engines -- are difficult to achieve with traditional processes such as CNC machining and injection molding.
SLS printed parts are not "prototypes" but finished parts with useful functionality. Commonly usedPA12 (nylon 12), PA11 (nylon 11), glass fiber reinforced nylonThese materials have mechanical properties close to those of injection-molded parts, as well as excellent chemical resistance and impact resistance, and can be used directly in mass-production scenarios such as automotive interior parts and medical and surgical tools.
From CAD model to finished part, industrial-grade SLS prints in3-7 daysThis is much faster than traditional mold making, which typically takes weeks. For R&D teams in prototype validation, small batch customized production, and emergency spare parts replenishment, this advantage can dramatically shorten the time-to-market cycle and seize the market opportunity.
Industrial-grade SLS equipment can nest dozens or even hundreds of parts in a single print run, making it ideal forSmall batch mass productionSLS can also be used as a "bridge manufacturing" tool - using SLS to quickly produce transitional parts before committing to expensive injection molds, avoiding risky tooling investments and reducing upfront production costs.
Nylon is the first material that comes to mind when you think of SLS materials, but industrial-grade equipment has achieved multi-material compatibility and specialized materials, especially in the foundry sector, are driving the digital transformation of traditional casting processes:
by combiningQuartz Sand / Ceramic SandMixed with a special binder for laser sintering, industrial-grade SLS printers can directly print sand molds and cores for metal casting, with core benefits including:
Industrial grade SLS devices can printLow ash casting waxIt is used for investment casting of aviation turbine blades, jewelry, and precision hardware, as opposed to traditional CNC machining of wax molds:
As a leading brand in the industry, 3DPTEK offers specialized models for foundry scenarios, adapted to the needs of industrial-grade production:
The industrial-grade SLS print process is highly automated, with a 5-step core process that eliminates the need for complex manual intervention:
With the advantages of high precision, high compatibility and fast production, industrial-grade SLS technology has landed in many key industries, and the typical application scenarios are as follows:
A European automotive supplier needed to customize tooling for a short-term production task. The traditional solution used CNC machining, which required a 10-day lead time and high equipment costs; it switched to CNC machining.3DPTEK Industrial Grade SLS 3D PrinterAfter:
Among the many brands of industrial SLS equipment, 3DPTEK has become a popular choice for manufacturing companies due to its "mass-production oriented" design philosophy, which is reflected in its core competence in four ways:
With the advancement of material science and automation technology, industrial SLS printing will develop to higher efficiency, wider application and higher quality, and the 3 major trends in the future are obvious:
Industrial-grade SLS 3D printers are no longer just "prototyping machines", they are "design-production-application" machines that are capable of linking the entire design-production-application process.Production-grade solutionsIndustrial SLS technology provides efficient, cost-effective solutions to the lightweight needs of the aerospace and automotive industries. Whether it's the lightweight needs of aerospace, the rapid response needs of the automotive industry, the personalization needs of the medical field, or the digitalization needs of the foundry industry, industrial-grade SLS technology provides an efficient, cost-effective solution.
For manufacturing companies, choosing the right industrial-grade SLS equipment (such as 3DPTEK's sand/wax mold models) not only improves productivity, but also breaks through the limitations of traditional processes and seizes the high ground for innovation - which is the core value of industrial-grade SLS 3D printing in the future of manufacturing.
工業(yè)級 SLS 3D 打印機:復雜零件精密制造的革新方案,2025 年技術解析與行業(yè)應用最先出現(xiàn)在三帝科技股份有限公司。
]]>