Surface barrier effects of a new thermal insulation material in in-situ soil thermal remediation engineering site
SHEN Yi1,, ZHAN Mingxiu2, ZHANG Yi1, GE Xiuxiu1, ZHOU Wenjun3, JIANG Zuming3, YANG Yanming3, GU Ailiang1, JIAO Wentao2,, 1.DDBS Environmental Remediation Co., Ltd, Nanjing 210012, China 2.State Key Laboratory of Urban and Regional Ecology, Research Center for Eco-Environmental Sciences, Chinese Academy of Sciences, Beijing 100085, China 3.Nanjing Urban Construction Land-Consolidation & Development Co., Ltd, Nanjing 210002, China
Abstract:In order to reduce energy consumption, effective thermal insulation measures were adopted in the surface soil of in-situ thermal remediation site. A new type of water-based thermal insulation coating of nano hollow ceramic microsphere (hereinafter referred to as “new insulation material”) which had low thermal conductivity, could be used as surface barrier material in an in-situ thermal remediation engineering site. The heat insulation performance was analyzed by calculating the material temperature gradient under different environmental conditions, and the effects of temperature gradients of the new thermal insulation material caused by the construction method and the experimental area size had been also analyzed. The results showed that the temperature gradient of the new insulation material in the thermal influence area of heating well, which the minimum radius was 0.53 m, could be 1 3600 ℃·m?1. Covering new insulation material in the influence area could significantly reduce the surface heat dissipation. Outside the influence area, the temperature gradient of the new insulation material on sunny days could be 1 560 ℃·m?1, was higher than that in night and rainy day. Under sunny environmental conditions, the temperature gradient of the new insulation material was higher than that of rainy and night environmental conditions. Thus, the application of new insulation material in an in-situ thermal remediation engineering site would have a good thermal insulation effect. Key words:new thermal insulation material/ surface barrier/ in-situ thermal remediation/ temperature gradients/ heat insulation performance/ heat affected zone.
图1实验区域表面阻隔层结构与测温点束各层分布示意图 Figure1.Layer structures and distribution of temperature measuring bundle
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1.DDBS Environmental Remediation Co., Ltd, Nanjing 210012, China 2.State Key Laboratory of Urban and Regional Ecology, Research Center for Eco-Environmental Sciences, Chinese Academy of Sciences, Beijing 100085, China 3.Nanjing Urban Construction Land-Consolidation & Development Co., Ltd, Nanjing 210002, China Received Date: 2021-01-07 Accepted Date: 2021-11-01 Available Online: 2021-12-22 Keywords:new thermal insulation material/ surface barrier/ in-situ thermal remediation/ temperature gradients/ heat insulation performance/ heat affected zone Abstract:In order to reduce energy consumption, effective thermal insulation measures were adopted in the surface soil of in-situ thermal remediation site. A new type of water-based thermal insulation coating of nano hollow ceramic microsphere (hereinafter referred to as “new insulation material”) which had low thermal conductivity, could be used as surface barrier material in an in-situ thermal remediation engineering site. The heat insulation performance was analyzed by calculating the material temperature gradient under different environmental conditions, and the effects of temperature gradients of the new thermal insulation material caused by the construction method and the experimental area size had been also analyzed. The results showed that the temperature gradient of the new insulation material in the thermal influence area of heating well, which the minimum radius was 0.53 m, could be 1 3600 ℃·m?1. Covering new insulation material in the influence area could significantly reduce the surface heat dissipation. Outside the influence area, the temperature gradient of the new insulation material on sunny days could be 1 560 ℃·m?1, was higher than that in night and rainy day. Under sunny environmental conditions, the temperature gradient of the new insulation material was higher than that of rainy and night environmental conditions. Thus, the application of new insulation material in an in-situ thermal remediation engineering site would have a good thermal insulation effect.