Automotive additive manufacturing has been embedded in the core of the auto industry through rapid prototyping since the earliest AM technologies emerged at the end of the 1980s. In 1987, General Motors was one of the four companies to install the SLA-1, the first 3D printer ever created, from 3D Systems. AM has gradually entered new areas of the automobile industry, such as motorsports and luxury limited editions, and is now looking to open up new possibilities in mass customization.
The next and final phase of automotive additive manufacturing adoption is one in which AM radically alters supply chain and production dynamics, becoming the standard for tooling and enabling new possibilities in spare parts and obsolescence management. The ultimate goal remains the introduction of AM technologies to digitalize and further automate serial mass production. In particular, the EV revolution stands to both benefit and further drive the adoption of AM, starting with a strong demand for prototyping and developing an entirely new generation of vehicles and eventually continuing through weight optimization and integrated subassemblies, becoming a key requirement to extend mileage and reduce energy consumption within increasingly “solid-state” vehicles.
As one of the first major consumer product industries to do so, this paradigm shift has extremely significant implications and potential for both AM and the global manufacturing industry. The impact of automotive additive manufacturing extends to all sectors of parts production, from raw materials to international distribution. Given the sheer scale of the global automotive market, the prospects are incredibly important for the development of automotive additive manufacturing technology.
In the past few years, we’ve seen attempts by high-throughput polymer AM technology providers (especially thermal powder-bed fusion processes such as MJF, SAF and HSS) and high-speed photopolymerization (DLS, cDLM, etc.) to scale AM adoption in automotive. In metal we are seeing new and established systems, such as the EOS M300, or the large multi-laser solutions from SLM Solutions (the 12-laser NXG 600 system) and various Chinese manufacturers such as BLT and Eplus3D, along and metal binder jetting systems such as Desktop Metal’s P-5 Production Systems, GE Additive’s H3 series, HP’s MetalJet, and ExOne’s X1 160Pro targeted specifically at the automotive market segment.
However, the production requirements of the automotive segment—and its subsegments—are unique and strictly tied to both the underlying characteristics of the automotive segment (high productivity requirements, lower cost of materials, and high automation of production) and its changing trends (demand, regulations, scale economics, geopolitical situations, and supply chain dynamics) and macro trends (propulsion systems, mass customization, smart mobility, connectivity and digitalization).
For this reason, other more established AM technologies, such as sand casting and molding using 3D printed cores (in polymer or ceramics) or 3D printed molds (in sand), are now emerging as ideal transitional processes for serial automotive manufacturing. In a growing number of cases, illustrated by Tesla, General Motors, and BMW (with both voxeljet and ExOne technologies), among others, sand binder jetting is emerging as a strategic solution for “gigacasting,” that is to produce very complex automotive parts and large components that combine multiple components into a single one.
Most manufacturers of 3D printing technology have established strong ties and experience developing and selling solutions to the auto industry. However, the additive manufacturing industry at large is still only just waking up to the challenges associated with vertically integrated manufacturing solutions.
The next phase of innovation, adoption, and industrialization of automotive additive manufacturing involves scaling up final parts production. For AM technologies to complete the necessary transition, several steps must be taken. These include continued investments in technology R&D by major stakeholders in both the AM and automotive industries; increased AM integration into the end-to-end manufacturing workflow to reduce costs and increase speed; and continued development of DfAM (Design for Additive Manufacturing) optimizations.
Now, while major adopters like BMW focus on AM mostly for production tools, other brands like CUPRA and Bentley leverage AM to enhance their design capabilities, turning their car interiors into customizable “jewelry.” In this new AM Focus, together with some of the most important automotive and AM industry stakeholders and experts, we build upon our previous Focus editions (dating back to 2020) to continue to shed light on the latest developments for automotive additive manufacturing in terms of hardware technologies, material science and production automation, presenting an additional analysis of how AM has been and will continue to revolutionize the automotive sector.
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