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Effects of fracture parameters and roughness on heat‐flow coupling in rock masses with two‐dimensional fracture networks.

Authors :
Huang, Fan
Yao, Chi
Zhang, Xiaobo
Wu, Ligong
Shao, Yulong
Zhou, Chuangbing
Source :
Energy Science & Engineering; Aug2021, Vol. 9 Issue 8, p1216-1231, 16p
Publication Year :
2021

Abstract

Discrete fracture network (DFN) is an effective means of describing the coupling of heat flow in an underground fractured rock mass. In this paper, an improved DFN is proposed by introducing the correlation function of fracture trace length and aperture, which is more consistent with the real fracture data. Next, based on the improved model, the influence of fracture roughness on the fluid flow and heat transmission was evaluated, and the relationship between the fracture aperture and the joint roughness coefficient (JRC) is established. Finally, based on the exponential function between confining pressure and aperture, the influence of confining pressure on the heat‐flow coupling process is considered in the improved model. Besides, the reliability of the model was verified by comparing with the analytical solution of the two‐dimensional single‐fracture heat‐flow coupling problem. The results show that under the same conditions, considering the correlation between the geometric parameters of the fracture, the seepage and heat transfer rates of the model increased, the outlet boundary flow reached the maximum value, and the average outlet temperature dropped rapidly. However, the fracture roughness reduces the outlet flow rate and the decline rate of average temperature. The confining pressure will lead to a decrease of about 3.5% in the outlet flow of the model, which is consistent with the seepage law in practical engineering. The model presented in this paper is an effective supplement to the two‐dimensional fracture network heat‐flow coupling model and can provide a theoretical basis and a numerical calculation tool for related underground rock mass engineering. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
20500505
Volume :
9
Issue :
8
Database :
Complementary Index
Journal :
Energy Science & Engineering
Publication Type :
Academic Journal
Accession number :
151721644
Full Text :
https://doi.org/10.1002/ese3.885