TY - JOUR
T1 - Valveless microliter combustion for densely packed arrays of powerful soft actuators
AU - Heisser, Ronald H.
AU - Aubin, Cameron A.
AU - Peretz, Ofek
AU - Kincaid, Nicholas
AU - An, Hyeon Seok
AU - Fisher, Elizabeth M.
AU - Sobhani, Sadaf
AU - Pepiot, Perrine
AU - Gat, Amir D.
AU - Shepherd, Robert F.
N1 - Funding Information: This work was supported in part by NSF CMMI-1537413, an Air Force Office of Scientific Research contract (FA9550-20-1-0254) and a Sloan Minority PhD Program fellowship (R.H.H.). We thank Nikolaos Bouklas and Andy Ruina for helpful discussions. We thank Patrick Wick for assistance with Schlieren imaging. We thank Kirstin Petersen for 3D printer and router access. We thank the Laboratory of Atomic and Solid State Physics (LASSP) Professional Machine Shop for experimental fabrication services. We thank Ronda Porras for providing remote work resources during the pandemic laboratory shutdown. The figure color palette was inspired by a beverage label design: ? 2020 Daniella Manini. Funding Information: ACKNOWLEDGMENTS. This work was supported in part by NSF CMMI-1537413, an Air Force Office of Scientific Research contract (FA9550-20-1-0254) and a Sloan Minority PhD Program fellowship (R.H.H.). We thank Nikolaos Bouklas and Andy Ruina for helpful discussions. We thank Patrick Wick for assistance with Schlieren imaging. We thank Kirstin Petersen for 3D printer and router access. We thank the Laboratory of Atomic and Solid State Physics (LASSP) Professional Machine Shop for experimental fabrication services. We thank Ronda Porras for providing remote work resources during the pandemic laboratory shutdown. The figure color palette was inspired by a beverage label design: © 2020 Daniella Manini. Publisher Copyright: © 2021 National Academy of Sciences. All rights reserved.
PY - 2021/9/28
Y1 - 2021/9/28
N2 - Existing tactile stimulation technologies powered by small actuators offer low-resolution stimuli compared to the enormous mechanoreceptor density of human skin. Arrays of soft pneumatic actuators initially show promise as small-resolution (1- to 3-mm diameter), highly conformable tactile display strategies yet ultimately fail because of their need for valves bulkier than the actuators themselves. In this paper, we demonstrate an array of individually addressable, soft fluidic actuators that operate without electromechanical valves. We achieve this by using microscale combustion and localized thermal flame quenching. Precisely, liquid metal electrodes produce sparks to ignite fuel lean methane–oxygen mixtures in a 5-mm diameter, 2-mm tall silicone cylinder. The exothermic reaction quickly pressurizes the cylinder, displacing a silicone membrane up to 6 mm in under 1 ms. This device has an estimated free-inflation instantaneous stroke power of 3 W. The maximum reported operational frequency of these cylinders is 1.2 kHz with average displacements of ∼100 μm. We demonstrate that, at these small scales, the wall-quenching flame behavior also allows operation of a 3 × 3 array of 3-mm diameter cylinders with 4-mm pitch. Though we primarily present our device as a tactile display technology, it is a platform microactuator technology with application beyond this one.
AB - Existing tactile stimulation technologies powered by small actuators offer low-resolution stimuli compared to the enormous mechanoreceptor density of human skin. Arrays of soft pneumatic actuators initially show promise as small-resolution (1- to 3-mm diameter), highly conformable tactile display strategies yet ultimately fail because of their need for valves bulkier than the actuators themselves. In this paper, we demonstrate an array of individually addressable, soft fluidic actuators that operate without electromechanical valves. We achieve this by using microscale combustion and localized thermal flame quenching. Precisely, liquid metal electrodes produce sparks to ignite fuel lean methane–oxygen mixtures in a 5-mm diameter, 2-mm tall silicone cylinder. The exothermic reaction quickly pressurizes the cylinder, displacing a silicone membrane up to 6 mm in under 1 ms. This device has an estimated free-inflation instantaneous stroke power of 3 W. The maximum reported operational frequency of these cylinders is 1.2 kHz with average displacements of ∼100 μm. We demonstrate that, at these small scales, the wall-quenching flame behavior also allows operation of a 3 × 3 array of 3-mm diameter cylinders with 4-mm pitch. Though we primarily present our device as a tactile display technology, it is a platform microactuator technology with application beyond this one.
KW - Combustion
KW - Haptics
KW - Microactuator
KW - Microfluidics
KW - Soft electronics
UR - https://www.scopus.com/pages/publications/85116130516
U2 - 10.1073/pnas.2106553118
DO - 10.1073/pnas.2106553118
M3 - Article
SN - 0027-8424
VL - 118
JO - Proceedings of the National Academy of Sciences of the United States of America
JF - Proceedings of the National Academy of Sciences of the United States of America
IS - 39
M1 - e2106553118
ER -