Application of a large-sized pressureless-sintered silicon carbide to a heat transfer tube of incinerator of waste

被引:0
|
作者
Sakai, Yukifumi [1 ]
Yoshida, Kayoko [2 ]
Arai, Atsushi [3 ]
Takai, Tomoo [3 ]
机构
[1] Covalent Materials Co., Head Office, Shinagawa-ku, Tokyo,141-0032, Japan
[2] Covalent Materials Co., R and D Group, Soya, Hadano,257-8566, Japan
[3] Covalent Materials Co., Kariya Plant, Ogakie, Kariya,448-8665, Japan
关键词
Heat transfer - Ceramic materials - Gases - Gasification - Heat exchangers - Corrosion resistance - Tubes (components) - Melting - Temperature - Sintering - Thermal expansion;
D O I
10.2472/jsms.64.229
中图分类号
学科分类号
摘要
We have developed a heat-transfer tube for use as a heat exchanger in waste gasification and melting systems. This heat-transfer tube, which is made of a pressureless-sintered silicon carbide material, is a single end-type with cantileversupport. Ceramic heat-transfer tubes fixed both ends to a metallic heat exchanger body are easily broken, due todifferences in thermal expansion at high temperatures, but silicon carbide tubes on a cantilever support do not have thisproblem. We measure basic properties of the heat-transfer tube such as the coefficient of heat transfer and corrosionresistance, and discuss ash removal. We conduct a low-temperature heat transfer experiment, using saturated steam at0.4 MPa pressure as a heating medium, and actual exhaust gas from a waste gasification and melting system at about1150 K as a high-temperature range. Air of 290 K, 79.2 m3[normal]/h reaches 820 K after two heat exchanger passes.Near the dew point, silicon carbide shows high corrosion resistance to the exhaust gas. Regarding ash removal, sandblasting effectively cleans the tube surface, because of hardness of a pressureless-sintered silicon carbide material.We simulate application of a large heat transfer tube, about φ200 x φ179 x 1800 mm, in a furnace. Results indicate thata heat transfer tube made of pressureless-sintered silicon carbide is suited to waste gasification and melting systems. © 2015 The Society of Materials Science.
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页码:229 / 234
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