基于Grasshopper-Wasp的虚拟模型生成

Bo Yu, Lei Zhang
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引用次数: 0

摘要

数字化在建筑行业发展迅速,参数化作为解决当代建筑设计早期问题的方法之一,受到了广泛关注。离散主义下的建筑设计语言要求建筑师寻找新的参数化逻辑和离散元素来思考建筑设计。本文试图建立变量参数与空间结构之间的联系,并从参数化算法中完成逻辑定义,对应不同尺度数字模型的生成。本研究的目的是探索基于rhino的Wasp插件的设计算法在不同空间尺度下的应用。在这种情况下,使用六个对照组来完成参数生成实践。首先,我们使用楔形和倾斜节点(S)连接基本结构,构建基本结构,形成基本空间单元组件(M)。同时,我们定义了不同尺度的几何对象载体,并按照从细节节点(S)到组件(M)、房间(L)、建筑(XL)和场地(城市)五个尺度的顺序对其进行量化。其次,本实践对用于承载生成算法的几何对象载体的尺寸进行优化,然后利用Grasshopper中的黄蜂插件算法完成同一逻辑层次从小到大尺度增长的空间模拟。最后,通过仿真增长,得到了一套由构件组成并通过特殊算法完成的虚拟空间模型构建。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A virtual model generation based on Grasshopper-Wasp
Digitalization is developing rapidly in the architecture industry, and parametric is regarded as one of the methods to solve the early stage of contemporary architectural design, so it has attracted widespread attention. The language of architectural design under discrete doctrine requires architects to find new parametric logic and discrete elements to think about architectural design. This article attempts to establish the connection between the variable parameters and the spatial structure, and completes the logical definition from the parameterized algorithm, and corresponds to the generation of digital models of different scales. The purpose of this research is to explore the application of the design algorithm in different spatial scales based on the Wasp plug-in of rhino. In this case, six control groups were used to complete the parametric generation practice. First, we use wedge-shaped and inclined nodes(S) to connect the basic structures to build the basic structure and form the basic spatial unit components (M). At the same time, we defined geometric object carriers of different scales and quantified them in order from Details node (S) to component (M), room (L), architecture (XL) and XXL-Field (urban) five scale sizes. Secondly, this practice optimizes the size of the geometric object carrier used to carry the generation algorithm, and then uses the wasp plug-in algorithm in Grasshopper to complete the spatial simulation of the same logical hierarchical growth from small to large scale. Finally, through simulation growth, we got a set of virtual space model constructions composed of components and completed by special algorithms.
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