Monolithic scalable compliant mechanisms

J Jared R. Hunter B Bethany Parkinson J Jacob L. Sheffield M Mark B. Rober B Brian D. Jensen S Spencer P. Magleby N Nathan S. Usevitch L Larry L. Howell

Abstract

Scaling a physical device’s geometry results in mechanical properties changing in various ways (e.g. the cubed-squared law states that for a scaling factor C , mass scales with C 3 and surface area with C 2 ). These scaling effects can result in a device’s inconsistent and unplanned mechanical behavior when varying its fabricated size, thereby necessitating unique designs at different scales. We show that for displacement-driven compliant mechanisms, mechanical stress is uniquely invariant with scale. This effect is described theoretically, verified through computer models and physical testing, and is demonstrated in three examples: a parallel-guiding mechanism, a projectile launcher, and a deployable chair. This enhanced understanding of stress invariance provides innovative insight into the way devices can be designed for systems that operate across different scales.

Article Details

Journal PLoS ONE
Volume / Issue Vol. 21, Issue 1
Published January 21, 2026
Pages e0340272
ISSN 1932-6203
Publisher Public Library of Science

Journal Info

PLoS ONE

Public Library of Science

ISSN: 1932-6203 Open Access Health Sciences

Authors (8)

J

Jared R. Hunter

B

Bethany Parkinson

J

Jacob L. Sheffield

M

Mark B. Rober

B

Brian D. Jensen

S

Spencer P. Magleby

N

Nathan S. Usevitch

L

Larry L. Howell