Analytical Solution of Steady-State Temperature Field of Single Freezing Pipe under Action of Seepage Field
To accurately describe the distribution law of the temperature field formed by a single freezing pipe under the action of a seepage field, the shape of the freezing front was simplified using a segmentation-equivalent method. The analytical solution of the steady-state temperature field was derived,...
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2020-01-01
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Series: | Advances in Civil Engineering |
Online Access: | http://dx.doi.org/10.1155/2020/5902184 |
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doaj-4c6bd52096d54a7393a431178d4ef8372020-11-25T03:27:05ZengHindawi LimitedAdvances in Civil Engineering1687-80861687-80942020-01-01202010.1155/2020/59021845902184Analytical Solution of Steady-State Temperature Field of Single Freezing Pipe under Action of Seepage FieldBin Wang0Chuanxin Rong1Hua Cheng2Haibing Cai3Shiqi Zhang4State Key Laboratory of Mining Response and Disaster Prevention and Control in Deep Coal Mine, Anhui University of Science and Technology, Huainan 232001, ChinaState Key Laboratory of Mining Response and Disaster Prevention and Control in Deep Coal Mine, Anhui University of Science and Technology, Huainan 232001, ChinaSchool of Civil Engineering and Architecture, Anhui University of Science and Technology, Huainan 232001, ChinaSchool of Civil Engineering and Architecture, Anhui University of Science and Technology, Huainan 232001, ChinaSchool of Civil Engineering and Architecture, Anhui University of Science and Technology, Huainan 232001, ChinaTo accurately describe the distribution law of the temperature field formed by a single freezing pipe under the action of a seepage field, the shape of the freezing front was simplified using a segmentation-equivalent method. The analytical solution of the steady-state temperature field was derived, and the accuracy was verified using a physical model test. Combined with the results of the model test and the calculation results of the analytical solution, the distribution law of the freezing temperature field formed by a single pipe under different seepage velocities was analyzed. It was found that compared with the no flow rate, when the seepage velocity was 3, 6, and 9 m/day, the frozen area was reduced from 17.97 × 104 mm2 to 15.77 × 104, 3.84 × 104, and 3.05 × 104 mm2, respectively. The proportion of frozen area below −5°C increased from 39.43% to 40.19%, 49.84%, and 51.52%, respectively. The average freezing temperature field reduced from −5.78 to −5.86, −7.31, and −7.50°C, respectively. As the seepage velocity increased, the frozen area formed by a single pipe decreased while the proportion of the low-temperature zone increased and the average temperature of the temperature field decreased.http://dx.doi.org/10.1155/2020/5902184 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Bin Wang Chuanxin Rong Hua Cheng Haibing Cai Shiqi Zhang |
spellingShingle |
Bin Wang Chuanxin Rong Hua Cheng Haibing Cai Shiqi Zhang Analytical Solution of Steady-State Temperature Field of Single Freezing Pipe under Action of Seepage Field Advances in Civil Engineering |
author_facet |
Bin Wang Chuanxin Rong Hua Cheng Haibing Cai Shiqi Zhang |
author_sort |
Bin Wang |
title |
Analytical Solution of Steady-State Temperature Field of Single Freezing Pipe under Action of Seepage Field |
title_short |
Analytical Solution of Steady-State Temperature Field of Single Freezing Pipe under Action of Seepage Field |
title_full |
Analytical Solution of Steady-State Temperature Field of Single Freezing Pipe under Action of Seepage Field |
title_fullStr |
Analytical Solution of Steady-State Temperature Field of Single Freezing Pipe under Action of Seepage Field |
title_full_unstemmed |
Analytical Solution of Steady-State Temperature Field of Single Freezing Pipe under Action of Seepage Field |
title_sort |
analytical solution of steady-state temperature field of single freezing pipe under action of seepage field |
publisher |
Hindawi Limited |
series |
Advances in Civil Engineering |
issn |
1687-8086 1687-8094 |
publishDate |
2020-01-01 |
description |
To accurately describe the distribution law of the temperature field formed by a single freezing pipe under the action of a seepage field, the shape of the freezing front was simplified using a segmentation-equivalent method. The analytical solution of the steady-state temperature field was derived, and the accuracy was verified using a physical model test. Combined with the results of the model test and the calculation results of the analytical solution, the distribution law of the freezing temperature field formed by a single pipe under different seepage velocities was analyzed. It was found that compared with the no flow rate, when the seepage velocity was 3, 6, and 9 m/day, the frozen area was reduced from 17.97 × 104 mm2 to 15.77 × 104, 3.84 × 104, and 3.05 × 104 mm2, respectively. The proportion of frozen area below −5°C increased from 39.43% to 40.19%, 49.84%, and 51.52%, respectively. The average freezing temperature field reduced from −5.78 to −5.86, −7.31, and −7.50°C, respectively. As the seepage velocity increased, the frozen area formed by a single pipe decreased while the proportion of the low-temperature zone increased and the average temperature of the temperature field decreased. |
url |
http://dx.doi.org/10.1155/2020/5902184 |
work_keys_str_mv |
AT binwang analyticalsolutionofsteadystatetemperaturefieldofsinglefreezingpipeunderactionofseepagefield AT chuanxinrong analyticalsolutionofsteadystatetemperaturefieldofsinglefreezingpipeunderactionofseepagefield AT huacheng analyticalsolutionofsteadystatetemperaturefieldofsinglefreezingpipeunderactionofseepagefield AT haibingcai analyticalsolutionofsteadystatetemperaturefieldofsinglefreezingpipeunderactionofseepagefield AT shiqizhang analyticalsolutionofsteadystatetemperaturefieldofsinglefreezingpipeunderactionofseepagefield |
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