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Artificial Neural Networks Approach for Ductility Prediction of Copper Cold Spray Laser Heat Treated Coatings

Artificial Neural Networks Approach for Ductility Prediction of Copper Cold Spray Laser Heat Treated Coatings
人工神经网络方法预测铜冷喷涂激光热处理涂层的延展性
批准号:
567502-2021
负责人:
Jodoin, BertrandB
金额:
$2.19万
依托单位:
依托单位国家:
加拿大
项目类别:
Alliance Grants
财政年份:
2022
资助国家:
加拿大
项目状态:
已结题
起止时间:
2022-01-01 至 2023-12-31

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中文摘要
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英文摘要
There is over 3 million nuclear used fuel bundles (UFBs) in Canada as by-products of electricity production by nuclear power plants and over 120,000 UFBs will be generated per year going forward. The goal of the partnership is to use in a synergetic approach existing knowledge and resources available at uOttawa and NRC to support The Nuclear Waste Management Organization (NWMO) in its quest to use cold spray (CS) additive manufacturing (CSAM) in the development of innovative used fuel container (UFC). The project is part of the NWMO extensive research and development program that will ensure the safe storage of UFBs in UFCs in deep geological repositories, replacing short-term above ground storage sites. Copper coating are to be used to cover the weld closure zone (welded junction between the main UFC body and the closing end cap) for corrosion protection of the UFCs. The project will allow achieving the coating ductility required to comply with external forces that it could encounter over the years without resulting in cracks and leaks of the radioactive material outside the UFCs. This will be achieved through the development of a laser heat treatment that will be designed using a trained neural network model able to correlate the laser parameters to the resulting ductility (input-output). In addition to the creation of new fundamental knowledge/training of highly qualified personnel, the project specific outcome will be the development of a new fast laser heat treatment (HT) on thick CSAM copper coatings (used on UFCs) to ensure a minimum ductility of 10% for safe usage. The work will have a direct impact on the UFC design viability proposed by NWMO for deep ground repository. Furthermore, it will create new knowledge on laser HT that can be adapted to industrial fields important to Canada such as aerospace and automotive.
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Neural Process模型的多样化高保真技术研究