Structural temperature self-monitoring system based on chiral structured shape memory polymer
US-2024094062-A1 · Mar 21, 2024 · US
US2022307911A1 · US · A1
| Field | Value |
|---|---|
| Publication number | US-2022307911-A1 |
| Application number | US-202117611572-A |
| Country | US |
| Kind code | A1 |
| Filing date | Apr 25, 2021 |
| Priority date | May 11, 2020 |
| Publication date | Sep 29, 2022 |
| Grant date | — |
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A structural health monitoring system based on a shape memory polymer includes a plurality of shape memory polymer buckling beam rod components, and a signal processing and structural health state abnormity warning platform. Each shape memory polymer buckling beam rod component includes an outer frame constraint, a shape memory polymer rod, and an electric signal generating element. The electric signal generating element includes piezoelectric material layers, and the signal processing and structural health state abnormity warning platform is electrically connected to the piezoelectric material layers.
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1 . A structural health monitoring system based on a shape memory polymer, the structural health monitoring system comprising a plurality of shape memory polymer buckling beam rod components and a signal processing and structural health state abnormity warning platform; wherein each shape memory polymer buckling beam rod component comprises an outer frame constraint, a shape memory polymer rod arranged in the outer frame constraint, and an electric signal generating element arranged on the shape memory polymer rod ( 4 ); the electric signal generating element comprises piezoelectric material layers covering surfaces of the shape memory polymer rod, and the signal processing and structural health state abnormity warning platform is electrically connected to the piezoelectric material layers. 2 . The structural health monitoring system based on the shape memory polymer according to claim 1 , wherein the signal processing and structural health monitoring abnormity warning platform is provided with an analog-to-digital converter, a micro controller, and a warning flasher. 3 . The structural health monitoring system based on the shape memory polymer according to claim 1 , wherein the shape memory polymer rod is able to generate a respective deformation along with temperature change. 4 . The structural health monitoring system based on the shape memory polymer according to claim 3 , wherein the shape memory polymer rod is able to generate buckling by an axial pressure under an action of the outer frame constraint after temperature deformation, and becomes a shape memory polymer buckling beam. 5 . The structural health monitoring system based on the shape memory polymer according to claim 4 , wherein the shape memory polymer buckling beam is able to generate post-buckling along with continuous change of a temperature, and becomes a shape memory polymer post-buckling beam. 6 . The structural health monitoring system based on the shape memory polymer according to claim 5 , wherein the piezoelectric material layers cover both sides of the shape memory polymer rod, and a length of each of the piezoelectric material layers covers every position where the shape memory polymer rod is in contact with the outer frame constraint when the shape memory polymer rod generates the post-buckling. 7 . The structural health monitoring system based on the shape memory polymer according to claim 3 , wherein the electric signal generating element further comprises wires connected to the piezoelectric material layers in a matched mode, and the wires are connected to the signal processing and structural health state abnormity warning platform. 8 . The structural health monitoring system based on the shape memory polymer according to claim 7 , wherein the electric signal generating element converts kinetic energy released by buckling and post-buckling of the shape memory polymer rod into electric signals and transmits the electric signals to the signal processing and structural health state abnormity warning platform. 9 . The structural health monitoring system based on the shape memory polymer according to claim 2 , wherein the shape memory polymer rod is able to generate buckling by an axial pressure under an action of the outer frame constraint after temperature deformation, and becomes a shape memory polymer buckling beam. 10 . The structural health monitoring system based on the shape memory polymer according to claim 9 , wherein the shape memory polymer buckling beam is able to generate post-buckling along with continuous change of a temperature, and becomes a shape memory polymer post-buckling beam. 11 . The structural health monitoring system based on the shape memory polymer according to claim 10 , wherein the piezoelectric material layers cover both sides of the shape memory polymer rod, and a length of each of the piezoelectric material layers covers every position where the shape memory polymer rod is in contact with the outer frame constraint when the shape memory polymer rod generates the post-buckling. 12 . The structural health monitoring system based on the shape memory polymer according to claim 1 , wherein the shape memory polymer rod is able to generate buckling by an axial pressure under an action of the outer frame constraint after temperature deformation, and becomes a shape memory polymer buckling beam. 13 . The structural health monitoring system based on the shape memory polymer according to claim 12 , wherein the shape memory polymer buckling beam is able to generate post-buckling along with continuous change of a temperature, and becomes a shape memory polymer post-buckling beam. 14 . The structural health monitoring system based on the shape memory polymer according to claim 13 , wherein the piezoelectric material layers cover both sides of the shape memory polymer rod, and a length of each of the piezoelectric material layers covers every position where the shape memory polymer rod is in contact with the outer frame constraint when the shape memory polymer rod generates the post-buckling. 15 . The structural health monitoring system based on the shape memory polymer according to claim 2 , wherein the electric signal generating element further comprises wires connected to the piezoelectric material layers in a matched mode, and the wires are connected to the signal processing and structural health state abnormity warning platform. 16 . The structural health monitoring system based on the shape memory polymer according to claim 15 , wherein the electric signal generating element converts kinetic energy released by buckling and post-buckling of the shape memory polymer rod into electric signals and transmits the electric signals to the signal processing and structural health state abnormity warning platform. 17 . The structural health monitoring system based on the shape memory polymer according to claim 1 , wherein the electric signal generating element further comprises wires connected to the piezoelectric material layers in a matched mode, and the wires are connected to the signal processing and structural health state abnormity warning platform. 18 . The structural health monitoring system based on the shape memory polymer according to claim 17 , wherein the electric signal generating element converts kinetic energy released by buckling and post-buckling of the shape memory polymer rod into electric signals and transmits the electric signals to the signal processing and structural health state abnormity warning platform.
by measuring variation of impedance, e.g. resistance, capacitance, induction · CPC title
by determining deflection or stress · CPC title
for measuring the deformation in a solid, e.g. by resistance strain gauge · CPC title
using materials with a configuration memory, e.g. Ni-Ti alloys · CPC title
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