Optimizing Reinforcement

Adam Orlinski, Klaas De Rycke, Moritz Heimrath
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Abstract

The combination of parametric modelling with structural analysis prompted new synergies between designing and engineering. The connection of structural calculation models such as Karamba3d to algorithmic modelling platforms such as Grasshopper3d allowed to embed tools for analysis and simulation into the environment of creative design processes. This way structural analysis advanced from its single sided calculation “duty” towards participation in design language of articulated structural expression.  3d-concrete-printing serves as a great new territory to apply the potential of real-time parametric structural analysis in the built environment of rapid prototyping and robotic fabrication. While 3d-printed-concrete rapidly advanced in technology and empiric know-how, so also grew the ambition to utilize them for larger purposes and bigger building projects. Known requirements such as structural integrity according to building code, interfaces for construction or waterproofing pose clear challenges for further realizations. In order to develop 3d-concrete-printing to its full potential all challenges must serve as opportunities to dissect and rethink established norms and practices, and to construct a new interdisciplinary rule book for an emerging building technology. In this field working through challenges via prototypes serve as great basis for development and allows for an applied discourse within the wider community. Furthermore to address challenges a flexible toolbox for structural analysis such as Karamba3d offers the potential to serve as an open instrument for structural analysis and to promote 3d-concrete-printing within that interdisciplinary effort to its next level. On the one hand the tool enables to suggest customized and optimized rebar layouts which could support the development of 3D-concrete-printing further. By enabling this more customizable calculation and tailored real time feedback for complex structures, solutions can develop more structurally informed. On the other hand, recent developments with Karamba3D within our office of Bollinger+Grohmann have shown the possibility of real time feedback loops between the physical printing process and the digital calculation model. Both developments show the potential that material systems can be optimized towards specific patterns or values of forces, or structures can be evaluated in real time for their load bearing capacity while hardening during printing.
优化钢筋
参数化建模与结构分析的结合促进了设计与工程之间新的协同作用。结构计算模型(如Karamba3d)与算法建模平台(如Grasshopper3d)的连接允许将分析和仿真工具嵌入到创意设计过程的环境中。这种结构分析方式从单一的计算“责任”向参与结构表达的设计语言发展。3d混凝土打印作为一个伟大的新领域,在快速原型和机器人制造的建筑环境中应用实时参数结构分析的潜力。虽然3d打印混凝土在技术和经验知识方面迅速发展,但也有雄心壮志将其用于更大的目的和更大的建筑项目。已知的需求,如根据建筑规范的结构完整性、施工接口或防水,为进一步实现提出了明显的挑战。为了充分发挥3d混凝土打印的潜力,所有挑战都必须成为剖析和重新思考既定规范和实践的机会,并为新兴建筑技术构建新的跨学科规则手册。在这个领域,通过原型解决挑战是发展的重要基础,并允许在更广泛的社区内进行应用讨论。此外,为了应对挑战,灵活的结构分析工具箱(如Karamba3d)提供了作为结构分析开放工具的潜力,并将3d混凝土打印在跨学科的努力中提升到一个新的水平。一方面,该工具可以建议定制和优化钢筋布局,这可以支持3d混凝土打印的进一步发展。通过为复杂结构启用这种更可定制的计算和定制的实时反馈,解决方案可以开发出更多的结构信息。另一方面,Bollinger+Grohmann办公室最近与Karamba3D的发展表明,物理打印过程和数字计算模型之间存在实时反馈循环的可能性。这两项发展都表明,材料系统可以针对特定的模式或力值进行优化,或者可以在打印过程中硬化时实时评估结构的承载能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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