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DTSTART:20221213T130000Z
DTEND:20221213T134500Z
SUMMARY:DCAMM seminar - Inverse design and physical realization of mechanical and magnetic metastructures with programmable nonlinear responses
DESCRIPTION:<p><span>A DCAMM seminar will be presented by</span></p>\n<p style="margin-bottom: 0.0001pt; text-align: center;"><strong><span><br />\n</span></strong></p>\n<p style="margin-bottom: 0cm; text-align: center;"><strong><span>X. Shelly Zhang, Assistant Professor<br />\n</span></strong><strong>Department of Civil and Environmental Engineering (CEE)<br />\n</strong><strong>Department of Mechanical Science and Engineering (MechSE)<br />\n</strong><strong><strong>University of Illinois at Urbana-Champaign</strong>&nbsp;</strong></p>\n<p style="margin-bottom: 0.0001pt; text-align: center;"><strong><span>\n<br />\n</span></strong></p>\n<p style="margin-bottom: 0.0001pt; text-align: center;"><strong><span>\n&nbsp;<br />\n</span></strong></p>\n&nbsp;&nbsp;\n<p style="margin-top: 0cm; margin-right: 0cm; margin-bottom: 0.0001pt; text-align: justify;"><strong><span>Abstract:<br />\n<br />\n</span></strong><span style="text-align: left;">The rational design and realization of programmable materials and structures play important roles in enabling functional devices, such as actuators, sensors, and robotics. Yet, the use of heuristically developed structural patterns could lead to restricted design space and&nbsp;</span><span style="text-align: left;">potential failure to achieve specific target behaviors.<br />\n<br />\n</span><span style="text-align: left;">This talk will first introduce a topology optimization approach to inverse design soft mechanical metastructures, which are precisely programmed with a variety of extreme yet function-oriented responses under large deformations. The synthesized metastructures exhibit organic geometries and motions with irregular distribution of different material phases. Within the structure, different hyperelastic</span><span style="text-align: left;">materials play distinct roles yet seamlessly collaborate through sophisticated deformation mechanisms. In addition, the properties of metamaterials and metastructures typically remain fixed after being designed. To enable reprogrammable behaviors, we introduce a magneto-mechanical topology optimization approach to generate magnetic metamaterials with responses that can be altered by external magnetic fields.</span><span style="text-align: left;">&nbsp; </span><span style="text-align: left;">The obtained magnetic metastructures exhibit one response under purely mechanical loading, and switch to a distinct response under simultaneous mechanical and applied magnetic fields.<br />\n<br />\n</span><span style="text-align: left;">With proposed optimization frameworks and hybrid fabrication, we design and fabricate a library of mechanical and magnetic meta</span><span style="text-align: left;">structures that realize a wide range of precisely programmed nonlinear responses, including multi-plateau, switchable deformation, and adaptable snap buckling. These switchable yet programmable mechanical responses are enabled by the interactions among unique</span><span style="text-align: left;">geometry, large deformations, and magnetic actuation (when applicable). The proposed optimization-driven computational design&nbsp;</span><span style="text-align: left;">strategies can be utilized to design and realize multi-functional devices in various applications.</span></p>\n<p style="margin-top: 0cm; margin-right: 0cm; margin-bottom: 0.0001pt; text-align: justify;"><span style="text-align: left;">\n<br />\n</span><span style="text-align: left;"></span><span style="color: black;">Danish pastry, coffee and tea will be served 15 minutes before the seminar starts.</span>&nbsp;</p>\n<p style="margin-top: 0cm; margin-right: 0cm; margin-bottom: 0.0001pt; text-align: justify;">\n<br />\nAll interested persons are invited</p>
X-ALT-DESC;FMTTYPE=text/html:<p><span>A DCAMM seminar will be presented by</span></p>\n<p style="margin-bottom: 0.0001pt; text-align: center;"><strong><span><br />\n</span></strong></p>\n<p style="margin-bottom: 0cm; text-align: center;"><strong><span>X. Shelly Zhang, Assistant Professor<br />\n</span></strong><strong>Department of Civil and Environmental Engineering (CEE)<br />\n</strong><strong>Department of Mechanical Science and Engineering (MechSE)<br />\n</strong><strong><strong>University of Illinois at Urbana-Champaign</strong>&nbsp;</strong></p>\n<p style="margin-bottom: 0.0001pt; text-align: center;"><strong><span>\n<br />\n</span></strong></p>\n<p style="margin-bottom: 0.0001pt; text-align: center;"><strong><span>\n&nbsp;<br />\n</span></strong></p>\n&nbsp;&nbsp;\n<p style="margin-top: 0cm; margin-right: 0cm; margin-bottom: 0.0001pt; text-align: justify;"><strong><span>Abstract:<br />\n<br />\n</span></strong><span style="text-align: left;">The rational design and realization of programmable materials and structures play important roles in enabling functional devices, such as actuators, sensors, and robotics. Yet, the use of heuristically developed structural patterns could lead to restricted design space and&nbsp;</span><span style="text-align: left;">potential failure to achieve specific target behaviors.<br />\n<br />\n</span><span style="text-align: left;">This talk will first introduce a topology optimization approach to inverse design soft mechanical metastructures, which are precisely programmed with a variety of extreme yet function-oriented responses under large deformations. The synthesized metastructures exhibit organic geometries and motions with irregular distribution of different material phases. Within the structure, different hyperelastic</span><span style="text-align: left;">materials play distinct roles yet seamlessly collaborate through sophisticated deformation mechanisms. In addition, the properties of metamaterials and metastructures typically remain fixed after being designed. To enable reprogrammable behaviors, we introduce a magneto-mechanical topology optimization approach to generate magnetic metamaterials with responses that can be altered by external magnetic fields.</span><span style="text-align: left;">&nbsp; </span><span style="text-align: left;">The obtained magnetic metastructures exhibit one response under purely mechanical loading, and switch to a distinct response under simultaneous mechanical and applied magnetic fields.<br />\n<br />\n</span><span style="text-align: left;">With proposed optimization frameworks and hybrid fabrication, we design and fabricate a library of mechanical and magnetic meta</span><span style="text-align: left;">structures that realize a wide range of precisely programmed nonlinear responses, including multi-plateau, switchable deformation, and adaptable snap buckling. These switchable yet programmable mechanical responses are enabled by the interactions among unique</span><span style="text-align: left;">geometry, large deformations, and magnetic actuation (when applicable). The proposed optimization-driven computational design&nbsp;</span><span style="text-align: left;">strategies can be utilized to design and realize multi-functional devices in various applications.</span></p>\n<p style="margin-top: 0cm; margin-right: 0cm; margin-bottom: 0.0001pt; text-align: justify;"><span style="text-align: left;">\n<br />\n</span><span style="text-align: left;"></span><span style="color: black;">Danish pastry, coffee and tea will be served 15 minutes before the seminar starts.</span>&nbsp;</p>\n<p style="margin-top: 0cm; margin-right: 0cm; margin-bottom: 0.0001pt; text-align: justify;">\n<br />\nAll interested persons are invited</p>

URL:http://www.dcamm.dk/da/Kalender/2022/12/Seminar_No_763
DTSTAMP:20260917T001100Z
UID:{B826064A-385D-480B-A999-A8DC3E4450E5}-20221213T130000Z-20221213T130000Z
LOCATION: Building 414, Room 061B, Technical University of Denmark
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