2019
DOI: 10.1126/scirobotics.aay3493
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Bioinspired dual-morphing stretchable origami

Abstract: Nature demonstrates adaptive and extreme shape morphing via unique patterns of movement. Many of them have been explained by monolithic shape-changing mechanisms, such as chemical swelling, skin stretching, origami/kirigami morphing, or geometric eversion, that were successfully mimicked in artificial analogs. However, there still remains an unexplored regime of natural morphing that cannot be reproduced in artificial systems by a “single-mode” morphing mechanism. One example is the “dual-mode” morphing of Eur… Show more

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Cited by 173 publications
(104 citation statements)
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“…Very popular among children in the form of party balloons, inflatables have also been employed in science and engineering to enable the design of a variety of systems, including temporary shelters [1,2,3], airbags [4,5], soft robots [6,7,8,9,10,11] and shapemorphing structures [12,13,14,15]. To design shape changing inflatable structures, two main strategies have been pursued.…”
mentioning
confidence: 99%
See 1 more Smart Citation
“…Very popular among children in the form of party balloons, inflatables have also been employed in science and engineering to enable the design of a variety of systems, including temporary shelters [1,2,3], airbags [4,5], soft robots [6,7,8,9,10,11] and shapemorphing structures [12,13,14,15]. To design shape changing inflatable structures, two main strategies have been pursued.…”
mentioning
confidence: 99%
“…Further, since we must reach ε tot φ = 1.094 in the 7th row upon inflation, we obtain w e = 2.53 mm from Eq. (8). Guided by these calculations, we use FE simulations to predict how the response of a kirigami unit cell is affected by the removal of a kirigami strip of width w e = 2.53 mm.…”
mentioning
confidence: 99%
“…Color online) Elastic folding/wrinkling actuators driven by positive pressure. (a) Fluidic origami structure[99]; (b) pneumatic actuator based on elastic Miura origami structure[100]; (c) soft actuator based on dual-morphing Miura origami structure[101].…”
mentioning
confidence: 99%
“…(2) It has been used on transformable machines [37,38] such as in medical robots due to its deployable nature [ 39,40,41] (Fig. 1.3(c-e)), and also combined with soft robotics to achieve dual-morphing structures [42] ( Fig. 1.3(f)).…”
Section: Robotics Applicationmentioning
confidence: 99%
“…If done, we can adjust material properties during transformation to achieve easier transformations as well as increase the functionality of the structure. Another interesting topic is to combine origami research with soft robotics, which have been introduced in Kim et al [42] to create dual-morphing mechanisms.…”
Section: Interdisciplinary Studiesmentioning
confidence: 99%