自然感知的细胞水平建模与仿生传感器技术设计的功能基础

J. Stroble, S. Watkins, Robert Stone, D. McAdams, L. Shu
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引用次数: 18

摘要

在调查了自然传感解决方案的生物学后,确定了跨生物王国的六种主要类型的外来传感。自然感知发生在细胞水平上,受体细胞对光、化学、电、机械、热和磁感受器类型的刺激作出反应。在最高层次上,所有的自然感觉系统对刺激都有相同的反应顺序:感知、转导和反应。本研究旨在探索生物与工程领域之间知识转移的方法。通过使用功能基础(一种定义良好的建模语言),自然感知的独创性可以通过功能模型被捕获,并跨越到工程领域,用于设计或灵感。此外,列出模型中每个组件的形态矩阵可以很容易地比较和对比生物和工程设计组件,有效地连接两个设计领域。从最高亚层到第4亚层,对动植物界的6个主要受体家族进行了建模,重点研究了转导序列。为了使设计工程师能够访问生物传感模型,它们被作为工件放置在密苏里科技大学设计库中。然后通过功能特征搜索设计库,将模型用于概念生成和仿生设计。以基于电鱼原理的仿生导航产品为例,说明了自然感知模型、形态矩阵和设计库的应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Modeling the Cellular Level of Natural Sensing with the Functional Basis for the Design of Biomimetic Sensor Technology
After surveying biology for natural sensing solutions six main types of extraneous sensing were identified across the biological kingdoms. Natural sensing happens at the cellular level with receptor cells that respond to photo, chemo, eletro, mechano, thermo and magnetoreceptor-type stimuli. At the highest level, all natural sensing systems have the same reaction sequence to stimuli: perception, transduction, and response. This research is exploring methods for knowledge transfer between the biological and engineering domains. With the use of the Functional Basis, a well-defined modeling language, the ingenuity of natural sensing can be captured through functional models and crossed over into the engineering domain, for design or inspiration. Furthermore, a morph-matrix that lists each component in the model can easily compare and contrast the biological and engineering design components, effectively bridging the two design domains. The six main types of receptor families were modeled for the Animalia and Plantae Kingdoms, from the highest to the 4th sub-level, with emphasis on the transduction sequence. To make the biological sensing models accessible to design engineers they were placed in the Missouri University of Science & Technology Design Repository as artifacts. The models can then be utilized for concept generation and biomimetic design through searching the design repository by functional characteristics. An example of a biomimetic navigation product based on the principle of electric fish is provided to illustrate the utilization of the natural sensing models, morph-matrices and design repository.
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