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Study on the Gas Release of 3D-Printed Furan Resin Sand Core during the Casting Process

In sand casting, gas porosity is a common defect that can result in decreased strength, leakage, rough surfaces, or other problems. Although the forming mechanism is very complicated, gas release from sand cores is often a significant contributor to the formation of gas porosity defects. Therefore,...

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Autores principales: Wang, Xiaolong, Wu, Qihua, Huang, Yuhang, Li, Na, Wu, Xiongzhi, Chen, Xiuming, Wang, Jiwu, Jing, Tao, Huang, Tianyou, Kang, Jinwu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10254930/
https://www.ncbi.nlm.nih.gov/pubmed/37297285
http://dx.doi.org/10.3390/ma16114152
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author Wang, Xiaolong
Wu, Qihua
Huang, Yuhang
Li, Na
Wu, Xiongzhi
Chen, Xiuming
Wang, Jiwu
Jing, Tao
Huang, Tianyou
Kang, Jinwu
author_facet Wang, Xiaolong
Wu, Qihua
Huang, Yuhang
Li, Na
Wu, Xiongzhi
Chen, Xiuming
Wang, Jiwu
Jing, Tao
Huang, Tianyou
Kang, Jinwu
author_sort Wang, Xiaolong
collection PubMed
description In sand casting, gas porosity is a common defect that can result in decreased strength, leakage, rough surfaces, or other problems. Although the forming mechanism is very complicated, gas release from sand cores is often a significant contributor to the formation of gas porosity defects. Therefore, studying the gas release behavior of sand cores is crucial to solving this problem. Current research on the gas release behavior of sand cores mainly focuses on parameters such as gas permeability and gas generation properties, through experimental measurement and numerical simulation methods. However, accurately reflecting the gas generation situation in the actual casting process is difficult, and there are certain limitations. To achieve the actual casting condition, a sand core was designed and enclosed inside a casting. The core print was extended to the sand mold surface, with two types of core prints: hollow and dense. Pressure and airflow speed sensors were installed on the exposed surface of the core print to investigate the burn-off of the binder of the 3D-printed furan resin quartz sand cores. The experimental results showed that the gas generation rate was high in the initial stage of the burn-off process. The gas pressure quickly reached its peak in the initial stage and then decreased rapidly. The exhaust speed of the dense type of core print was 1 m/s, lasting for 500 s. The pressure peak of the hollow-type sand core was 1.09 kPa, and the exhaust speed peak was 1.89 m/s. The binder can be sufficiently burned off for the location surrounding the casting and the crack-affected area, so the burnt sand appears white, while the burnt core appears black due to insufficient burning of the binder because of isolation from the air. The gas generated by the burnt resin sand in contact with air was 30.7% less than that generated by the burnt resin sand insulated from the air.
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spelling pubmed-102549302023-06-10 Study on the Gas Release of 3D-Printed Furan Resin Sand Core during the Casting Process Wang, Xiaolong Wu, Qihua Huang, Yuhang Li, Na Wu, Xiongzhi Chen, Xiuming Wang, Jiwu Jing, Tao Huang, Tianyou Kang, Jinwu Materials (Basel) Article In sand casting, gas porosity is a common defect that can result in decreased strength, leakage, rough surfaces, or other problems. Although the forming mechanism is very complicated, gas release from sand cores is often a significant contributor to the formation of gas porosity defects. Therefore, studying the gas release behavior of sand cores is crucial to solving this problem. Current research on the gas release behavior of sand cores mainly focuses on parameters such as gas permeability and gas generation properties, through experimental measurement and numerical simulation methods. However, accurately reflecting the gas generation situation in the actual casting process is difficult, and there are certain limitations. To achieve the actual casting condition, a sand core was designed and enclosed inside a casting. The core print was extended to the sand mold surface, with two types of core prints: hollow and dense. Pressure and airflow speed sensors were installed on the exposed surface of the core print to investigate the burn-off of the binder of the 3D-printed furan resin quartz sand cores. The experimental results showed that the gas generation rate was high in the initial stage of the burn-off process. The gas pressure quickly reached its peak in the initial stage and then decreased rapidly. The exhaust speed of the dense type of core print was 1 m/s, lasting for 500 s. The pressure peak of the hollow-type sand core was 1.09 kPa, and the exhaust speed peak was 1.89 m/s. The binder can be sufficiently burned off for the location surrounding the casting and the crack-affected area, so the burnt sand appears white, while the burnt core appears black due to insufficient burning of the binder because of isolation from the air. The gas generated by the burnt resin sand in contact with air was 30.7% less than that generated by the burnt resin sand insulated from the air. MDPI 2023-06-02 /pmc/articles/PMC10254930/ /pubmed/37297285 http://dx.doi.org/10.3390/ma16114152 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Wang, Xiaolong
Wu, Qihua
Huang, Yuhang
Li, Na
Wu, Xiongzhi
Chen, Xiuming
Wang, Jiwu
Jing, Tao
Huang, Tianyou
Kang, Jinwu
Study on the Gas Release of 3D-Printed Furan Resin Sand Core during the Casting Process
title Study on the Gas Release of 3D-Printed Furan Resin Sand Core during the Casting Process
title_full Study on the Gas Release of 3D-Printed Furan Resin Sand Core during the Casting Process
title_fullStr Study on the Gas Release of 3D-Printed Furan Resin Sand Core during the Casting Process
title_full_unstemmed Study on the Gas Release of 3D-Printed Furan Resin Sand Core during the Casting Process
title_short Study on the Gas Release of 3D-Printed Furan Resin Sand Core during the Casting Process
title_sort study on the gas release of 3d-printed furan resin sand core during the casting process
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10254930/
https://www.ncbi.nlm.nih.gov/pubmed/37297285
http://dx.doi.org/10.3390/ma16114152
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