Skip to main navigation Skip to search Skip to main content

Spring and latch dynamics can act as control pathways in ultrafast systems

  • N. P. Hyun
  • , J. P. Olberding
  • , A. De
  • , S. Divi
  • , X. Liang
  • , E. Thomas
  • , R. St. Pierre
  • , E. Steinhardt
  • , J. Jorge
  • , S. J. Longo
  • , S. Cox
  • , E. Mendoza
  • , G. P. Sutton
  • , E. Azizi
  • , A. J. Crosby
  • , S. Bergbreiter
  • , R. J. Wood
  • , S. N. Patek
  • Harvard University
  • University of California at Irvine
  • Carnegie Mellon University
  • University of Massachusetts
  • Duke University
  • University of Lincoln

Research output: Contribution to journalArticlepeer-review

18 Scopus citations

Abstract

Ultrafast movements propelled by springs and released by latches are thought limited to energetic adjustments prior to movement, and seemingly cannot adjust once movement begins. Even so, across the tree of life, ultrafast organisms navigate dynamic environments and generate a range of movements, suggesting unrecognized capabilities for control. We develop a framework of control pathways leveraging the non-linear dynamics of spring-propelled, latch-released systems. We analytically model spring dynamics and develop reduced-parameter models of latch dynamics to quantify how they can be tuned internally or through changing external environments. Using Lagrangian mechanics, we test feedforward and feedback control implementation via spring and latch dynamics. We establish through empirically-informed modeling that ultrafast movement can be controllably varied during latch release and spring propulsion. A deeper understanding of the interconnection between multiple control pathways, and the tunability of each control pathway, in ultrafast biomechanical systems presented here has the potential to expand the capabilities of synthetic ultra-fast systems and provides a new framework to understand the behaviors of fast organisms subject to perturbations and environmental non-idealities.

Original languageEnglish
Article number026002
JournalBioinspiration and Biomimetics
Volume18
Issue number2
DOIs
StatePublished - Mar 1 2023

Keywords

  • control
  • elastic
  • fast movements
  • latch
  • latch mediated spring actuation
  • spring-driven

Fingerprint

Dive into the research topics of 'Spring and latch dynamics can act as control pathways in ultrafast systems'. Together they form a unique fingerprint.

Cite this