The Bioinspiration Feedback Loop: an interdisciplinary exchange of processes and progress between biologists and engineers.

IF 2.1 3区 生物学 Q1 ZOOLOGY
Cassandra M Donatelli, Megan Vandenberg, Lorenzo Martinez, Andrew K Schulz, E W Misty Paig-Tran, Karly E Cohen
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引用次数: 0

Abstract

Nature is an unparalleled innovator, coming up with countless solutions over millions of years. From the microscopic structures of gecko feet that enable effortless climbing to the hydrodynamic efficiency of fish armor, biological systems have evolved to solve a myriad of complex challenges. Engineers have long drawn inspiration from these natural innovations, translating biological principles into new technologies. The process is rarely straightforward-biological structures evolve under constraints and trade-offs, often leading to multifunctional designs that do not conform to traditional engineering approaches. Here, we explore the dynamic exchange between biology and engineering, highlighting how bioinspired design not only informs new technologies but also deepens our understanding of living systems. Bioinspired design plays a crucial role in materials science, robotics, and biomedical sciences, underscoring the need for interdisciplinary collaboration. Existing partnerships between biologists and engineers has led to advances in adhesives, protective materials, filtration systems, and dynamic structural designs. Translating biological complexity into engineered simplicity can be challenging; we need open communication between fields to share methodologies, resources, and discoveries. By fostering a continuous feedback loop between biology and engineering, we can push the boundaries of innovation and discovery, ensuring that bioinspired design remains a driving force in scientific and technological advancement.

生物灵感反馈回路:生物学家和工程师之间的过程和进展的跨学科交流。
大自然是一个无与伦比的创新者,在数百万年的时间里想出了无数的解决方案。从壁虎足的微观结构到鱼类甲壳的流体动力学效率,生物系统已经进化到可以解决无数复杂的挑战。长期以来,工程师们一直从这些自然创新中汲取灵感,将生物学原理转化为新技术。这个过程很少是直截了当的——生物结构在约束和权衡下进化,经常导致不符合传统工程方法的多功能设计。在这里,我们探讨了生物学和工程学之间的动态交流,强调了生物启发设计如何不仅为新技术提供信息,而且加深了我们对生命系统的理解。生物启发设计在材料科学、机器人技术和生物医学科学中起着至关重要的作用,强调了跨学科合作的必要性。生物学家和工程师之间的现有合作伙伴关系导致了粘合剂,保护材料,过滤系统和动态结构设计的进步。将生物的复杂性转化为工程上的简单性可能具有挑战性;我们需要在各个领域之间开放交流,共享方法、资源和发现。通过培养生物学和工程学之间的持续反馈循环,我们可以推动创新和发现的界限,确保生物灵感设计仍然是科学和技术进步的驱动力。
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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来源期刊
CiteScore
4.70
自引率
7.70%
发文量
150
审稿时长
6-12 weeks
期刊介绍: Integrative and Comparative Biology ( ICB ), formerly American Zoologist , is one of the most highly respected and cited journals in the field of biology. The journal''s primary focus is to integrate the varying disciplines in this broad field, while maintaining the highest scientific quality. ICB''s peer-reviewed symposia provide first class syntheses of the top research in a field. ICB also publishes book reviews, reports, and special bulletins.
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