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根据 Ars Technica 的报道,Czinger 在这款敞篷超跑上应用了拓扑优化方法进行刹车组件的结构设计,并通过增材制造(即 3D 打印)完成生产。拓扑优化是一种根据受力分布自动去除低效材料的计算设计方法,其生成的结构往往带有不规则的枝状或镂空形态,与自然界中骨骼或植物组织的生长逻辑相似,因此成品在视觉上呈现出“有机感”。这种设计路径在保证结构强度的同时,能够显著降低部件重量,而重量控制对于高性能跑车的制动系统与簧下质量尤为关键。
Czinger 此前已在 21C 车型上广泛采用增材制造与计算化设计,涵盖悬挂部件、底盘结构等关键区域。此次将同类方法延伸至刹车系统,意味着该公司的制造策略正在覆盖更多功能性与安全相关部件。原文未提供该刹车组件的具体减重数据、材料配方或量产计划,但明确指出其设计与制造均依托拓扑优化和增材制造完成。
从行业视角看,增材制造在量产车中的应用仍主要集中在低应力装饰件或小批量定制部件,而刹车系统属于高载荷、高温度的安全部件,对材料疲劳性能和热稳定性要求严苛。Czinger 作为小规模高性能制造商,在验证周期和成本结构上与大型车企不同,这使其更有可能率先将此类技术推向实车。不过,原文未提及该刹车系统是否已通过相关法规认证或是否会在后续交付车辆中作为标准配置。
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Across California, it's time for Monterey Car Week, a cluster of events I once called "Comic-Con and the Oscars but with wheels." For the last however many years, though, it's mostly felt like an accumulation of rich people and influencers all crammed into the now-traffic-snarled peninsula, each paying 10 times the normal price for five-night minimums in three-star motels. While being there in person is pretty far down the list of things I want to do these days, that doesn't mean there's no interesting news coming out of the event. And no, I'm not talking about that hideous collaboration between Singer and Louis Vuitton. I'm instead referring to the latest creation from Czinger.
We first encountered Czinger's direct-metal laser-sintering technology a decade ago, before founder Kevin Czinger had even started the car company—at the time, it was still Divergent 3D. But what better way to show to the rest of the automotive industry that they should contract with you as a parts supplier than by making your own car? That was the idea behind Czinger (the company), and it's an approach that worked, as Divergent now has clients in the automotive sector as well as aerospace.
And what a car it is: a hybrid with tandem seating and an ability to set new lap records should you have the skill. But the performance is less interesting than the engineering. Free of its body panels, the structure looks more organic than mechanical, with topology-optimized shapes that are lighter but no less performing than traditionally designed alternatives.