Bending-activated biotensegrity structure enables female <i>Megarhyssa</i> to cross the barrier of Euler's critical force.

Wen, Rongwei; Wang, Zheng; Yi, Juan; Hu, Yong · Sci Adv · 2023

basic_science · Level V

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Abstract

The parasitic female <i>Megarhyssa</i> has a hair-like ovipositor capable of withstanding a penetration force 10 times greater than Euler's critical force, using a reciprocating penetration method. Understanding and replicating this penetration mechanism may notably broaden the application scenarios of artificial slender elements. Here, we show that the <i>Megarhyssa</i>'s stretched intersegmental membrane and precurved abdomen activate the multipart ovipositor as a biotensegrity structure. The ovipositor's first and second valvulae alternately retract and protract, with each retracted valvula forming a tension network to support the other under compression, resulting in an exponentially increased critical force. We validated this mechanism in a multipart flexible microneedle that withstood a penetration force of 2.5× Euler's critical force and in a lightweight industrial robot that achieved intrinsic safety through its ideal dual-stiffness characteristic. This finding could potentially elucidate the high efficiency of insect probes and inspire more efficient and safer engineering designs.

Medical subject headings