Stiffness-tunable and shape-locking soft actuators based on 3D-printed hybrid multi-materials

Jian Jiao , Yuan Guo , Qianqian Tong , Shengkai Liu , Pengfei Qiu , Tao Mei , Dangxiao Wang

Soft Science ›› 2022, Vol. 2 ›› Issue (4) : 20

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Soft Science ›› 2022, Vol. 2 ›› Issue (4) :20 DOI: 10.20517/ss.2022.19
Research Article

Stiffness-tunable and shape-locking soft actuators based on 3D-printed hybrid multi-materials

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Abstract

Soft actuators have been receiving tremendous attention as a result of their excellent adaptability to the environment. However, due to their inherently low stiffness, soft actuators are difficult to adapt to high-load tasks. Despite previous efforts in developing stiffness-tunable actuators by utilizing variable stiffness materials, they still suffer from limitations, including relatively low load and locking capacity to grasp weights and difficulties regarding their fabrication with complex structures. This work reports a novel stiffness-tunable and shape-locking soft (Tri-S) actuator using hybrid multi-material 3D printing. The Tri-S actuator consists of polylactic acid, thermoplastic polyurethane and a flexible carbon fiber heating wire. Its stiffness can be effectively tuned by Joule heating. A soft robotic gripper equipped with three Tri-S actuators demonstrates their stiffness-tunable and shape-locking capability by grasping and holding objects of various shapes and weights. The gripper can grasp weights up to 2.2 kg with an external driving force by tuning the stiffness and hold weights up to 310 g depending on its own shape locking without an external driving power source.

Keywords

Stiffness tunable / shape locking / hybrid multi-materials / 3D printing / soft actuators

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Jian Jiao, Yuan Guo, Qianqian Tong, Shengkai Liu, Pengfei Qiu, Tao Mei, Dangxiao Wang. Stiffness-tunable and shape-locking soft actuators based on 3D-printed hybrid multi-materials. Soft Science, 2022, 2(4): 20 DOI:10.20517/ss.2022.19

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References

[1]

Renda F,Dias J.Discrete cosserat approach for multisection soft manipulator dynamics.IEEE Trans Robot2018;34:1518-33

[2]

Yang H,Li W.Design and implementation of a soft robotic arm driven by sma coils.IEEE Trans Ind Electron2019;66:6108-16

[3]

Singh G.A constrained maximization formulation to analyze deformation of fiber reinforced elastomeric actuators.Smart Mater Struct2017;26:065024

[4]

Park W,Yoo Y,Kim S.Soft haptic actuator based on knitted PVC gel fabric.IEEE Trans Ind Electron2020;67:677-85

[5]

Zhao Y,Ruan L.Somatosensory actuator based on stretchable conductive photothermally responsive hydrogel.Sci Robot2021;6:eabd5483

[6]

Gorissen B,Konishi S,Kim JW.Elastic inflatable actuators for soft robotic applications.Adv Mater2017;29:1604977

[7]

Zhang J,Wang S,Li D.Large stable deformation of dielectric elastomers driven on mode of steady electric field.Smart Mater Struct2017;26:05LT01

[8]

Shintake J,Floreano D.Soft robotic grippers.Adv Mater2018;:e1707035

[9]

Chen S,Cao Y,Cao C.Soft robotic manipulation system capable of stiffness variation and dexterous operation for safe human-machine interactions.Adv Mater Technol2021;6:2100084

[10]

Manti M,Passetti G,Laschi C.A bioinspired soft robotic gripper for adaptable and effective grasping.Soft Robot2015;2:107-16

[11]

Shapiro Y,Gabor K.Bi-bellows: pneumatic bending actuator.Sens Actuators A Phys2011;167:484-94

[12]

Henke M,Gerlach G.Multi-layer beam with variable stiffness based on electroactive polymers. In proceedings of spie-the international society for optical engineering. 2012. pp. 83401P-13

[13]

Choi I,Peiros L,Keller S.A soft, controllable, high force density linear brake utilizing layer jamming.IEEE Robot Autom Lett2018;3:450-7

[14]

Zhu M,Hawkes E.Fluidic fabric muscle sheets for wearable and soft robotics.Soft Robot2020;7:179-97

[15]

Liu S,Meng F,Sun X.Modelling of a soft actuator with a semicircular cross section under gravity and external load.IEEE Trans Ind Electron2022;5:4952-61

[16]

Liu S,Kong W.Modeling of a bio-inspired soft arm with semicircular cross section for underwater grasping.Smart Mater Struct2021;30:125029

[17]

Wang Z,Zhang Y.A three-fingered force feedback glove using fiber-reinforced soft bending actuators.IEEE Trans Ind Electron2020;67:7681-90

[18]

Manti M,Cianchetti M.Stiffening in soft robotics: a review of the state of the art.IEEE Robot Automat Mag2016;23:93-106

[19]

Jiang A,Gerboni G.Robotic granular jamming: does the membrane matter?.Soft Robot2014;1:192-201

[20]

Majidi C.Tunable elastic stiffness with microconfined magnetorheological domains at low magnetic field.Appl Phys Lett2010;97:164104

[21]

Jiang P,Chen MZQ.A variable stiffness gripper based on differential drive particle jamming.Bioinspir Biomim2019;14:036009

[22]

Jiang A,Dasgupta P,Nanayakkara T.Design of a variable stiffness flexible manipulator with composite granular jamming and membrane coupling. In proceedings of 2012 IEEE/RSJ international conference on intelligent robots and systems. 2012. pp. 2922-27.

[23]

Taghavi M,Huang B.3D-printed ready-to-use variable-stiffness structures.IEEE Robot Autom Lett2018;3:2402-7

[24]

Ze Q,Wu S.Magnetic shape memory polymers with integrated multifunctional shape manipulation.Adv Mater2020;32:e1906657

[25]

Nakagawa M,Pournin L,Liebling TM.Particle shape versus friction in granular jamming. In proceedings of AIP Conference Proceedings. 2009. Volume 1145, pp. 499-502.

[26]

Amend JR,Rodenberg N,Lipson H.A positive pressure universal gripper based on the jamming of granular material.IEEE Trans Robot2012;28:341-50

[27]

Kim YJ,Kim S.Design of a tubular snake-like manipulator with stiffening capability by layer jamming. In proceedings of 2012 IEEE/RSJ international conference on intelligent robots and systems. 2012. pp. 4251-6

[28]

Li Y,Yang Y.Passive particle jamming and its stiffening of soft robotic grippers.IEEE Trans Robot2017;33:446-55

[29]

Kim Y,Kim S.A novel layer jamming mechanism with tunable stiffness capability for minimally invasive surgery.IEEE Trans Robot2013;29:1031-42

[30]

Jiang Y,Liu C.Chain-like granular jamming: a novel stiffness-programmable mechanism for soft robotics.Soft Robot2019;6:118-32

[31]

Xie T.Tunable polymer multi-shape memory effect.Nature2010;464:267-70

[32]

Yuen MC,Kramer RK.Active variable stiffness fibers for multifunctional robotic fabrics.IEEE Robot Autom Lett2016;1:708-15

[33]

Hao Y,Xie Z.A eutectic-alloy-infused soft actuator with sensing, tunable degrees of freedom, and stiffness properties.J Micromech Microeng2018;28:024004

[34]

Xu W,Ren H.Prototyping and characterisation of a variable stiffness actuation mechanism based on low melting point polymer.Int J Mechatron Autom2016;5:211

[35]

Shintake J,Rosset S,Floreano D.Variable stiffness actuator for soft robotics using dielectric elastomer and low-melting-point alloy. In proceedings of 2015 IEEE/RSJ international conference on intelligent robots and systems (IROS). 2015. pp. 1097-102.

[36]

Hao Y,Xi F,Li W.A variable stiffness soft robotic gripper with low-melting-point alloy. In proceedings of 2017 36th Chinese Control Conference (CCC). 2017. pp. 6781-6

[37]

Zhang Y,Hingorani H.Soft robots: fast-response, stiffness-tunable soft actuator by hybrid multimaterial 3D printing.Adv Funct Mater2019;29:1970098

[38]

Schubert BE.Variable stiffness material based on rigid low-melting-point-alloy microstructures embedded in soft poly(dimethylsiloxane) (PDMS).RSC Adv2013;3:24671

[39]

Al-Rubaiai M,Qian C.Soft actuators with stiffness and shape modulation using 3D-printed conductive polylactic acid material.Soft Robot2019;6:318-32

[40]

Li Y,Ren T,Choi SH.Precharged pneumatic soft actuators and their applications to untethered soft robots.Soft Robot2018;5:567-75

[41]

He Q,Wang Y,Tolley MT.Electrically controlled liquid crystal elastomer-based soft tubular actuator with multimodal actuation.Sci Adv2019;5:eaax5746 PMCID:PMC6788870

[42]

Alcântara CCJ,Lee S.3D fabrication of fully iron magnetic microrobots.Small2019;15:e1805006

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