Compensation of residual stress induced shape errors in CFRP structures using mechanical actuators

Fibercomposites, especially Carbon Fiber Reinforced PoIymer(CFRP)1 have received high recognition in numerous industries, because of their outstanding mechanical and thermal properties. However, due to curing stresses and other possible reasons, CFRP parts show distortions after manufacturing, in th...

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Main Author: Abhay Gopinath
Other Authors: Horst Baier
Format: Theses and Dissertations
Language:English
Published: 2016
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Online Access:http://hdl.handle.net/10356/68555
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-685552023-03-11T16:52:53Z Compensation of residual stress induced shape errors in CFRP structures using mechanical actuators Abhay Gopinath Horst Baier School of Mechanical and Aerospace Engineering Tao Luo DRNTU::Engineering::Mechanical engineering Fibercomposites, especially Carbon Fiber Reinforced PoIymer(CFRP)1 have received high recognition in numerous industries, because of their outstanding mechanical and thermal properties. However, due to curing stresses and other possible reasons, CFRP parts show distortions after manufacturing, in the form of warpage and spring-in. This results in wastage of parts especially in precision industries where high shape accuracy is required. Even after optimising the curing cycle and other parameters that Iead to curing stresses, the distortion still remain. In this thesis a postmanufacturing shape adjustment using conventional methods of mechanical actuation is suggested. Although there are state of the art actuators Iike shape memory polymers and piezo-ceramic actuators, they have many drawbacks Iike creep, Iow thermal capability etc. Mechanical actuators not only have larger actuation force capability, but also are cheap and easy to manufacture. Sample actuators made of steel were designed and manufactured fortesting the validity of the thesis and were used to produce counter deformations on the plate so that shape errors get minimized. Finite element methods were carried out to fix the position and number of actuators required and the results were validated using a test model. Experimental results of mechanical actuation on a test specimen proved reasonable shape error compensation and also showed close match with the simulation results. Master of Science (Aerospace Engineering) 2016-05-26T08:49:47Z 2016-05-26T08:49:47Z 2016 Thesis http://hdl.handle.net/10356/68555 en 107 p. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Engineering::Mechanical engineering
spellingShingle DRNTU::Engineering::Mechanical engineering
Abhay Gopinath
Compensation of residual stress induced shape errors in CFRP structures using mechanical actuators
description Fibercomposites, especially Carbon Fiber Reinforced PoIymer(CFRP)1 have received high recognition in numerous industries, because of their outstanding mechanical and thermal properties. However, due to curing stresses and other possible reasons, CFRP parts show distortions after manufacturing, in the form of warpage and spring-in. This results in wastage of parts especially in precision industries where high shape accuracy is required. Even after optimising the curing cycle and other parameters that Iead to curing stresses, the distortion still remain. In this thesis a postmanufacturing shape adjustment using conventional methods of mechanical actuation is suggested. Although there are state of the art actuators Iike shape memory polymers and piezo-ceramic actuators, they have many drawbacks Iike creep, Iow thermal capability etc. Mechanical actuators not only have larger actuation force capability, but also are cheap and easy to manufacture. Sample actuators made of steel were designed and manufactured fortesting the validity of the thesis and were used to produce counter deformations on the plate so that shape errors get minimized. Finite element methods were carried out to fix the position and number of actuators required and the results were validated using a test model. Experimental results of mechanical actuation on a test specimen proved reasonable shape error compensation and also showed close match with the simulation results.
author2 Horst Baier
author_facet Horst Baier
Abhay Gopinath
format Theses and Dissertations
author Abhay Gopinath
author_sort Abhay Gopinath
title Compensation of residual stress induced shape errors in CFRP structures using mechanical actuators
title_short Compensation of residual stress induced shape errors in CFRP structures using mechanical actuators
title_full Compensation of residual stress induced shape errors in CFRP structures using mechanical actuators
title_fullStr Compensation of residual stress induced shape errors in CFRP structures using mechanical actuators
title_full_unstemmed Compensation of residual stress induced shape errors in CFRP structures using mechanical actuators
title_sort compensation of residual stress induced shape errors in cfrp structures using mechanical actuators
publishDate 2016
url http://hdl.handle.net/10356/68555
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