Estimation of Groundwater Flow Rate by an Actively Heated Fiber Optics Based Thermal Response Test in a Grouted Borehole

Author:

Zhang Bo1ORCID,Gu Kai12ORCID,Bayer Peter3ORCID,Qi Haibo1,Shi Bin1ORCID,Wang Baojun1,Jiang Yuehua4,Zhou Quanping4

Affiliation:

1. School of Earth Sciences and Engineering Nanjing University Nanjing China

2. Frontiers Science Center for Critical Earth Material Cycling Nanjing University Nanjing China

3. Institute of Geosciences and Geography Martin Luther University Halle‐Wittenberg Halle Germany

4. Nanjing Center China Geological Survey Nanjing China

Abstract

AbstractThe thermal response test (TRT) in an aquifer establishes a relationship between the groundwater flow rate and the recorded temperature response curve of temporal ground heating. A major challenge for achieving a mature hydrogeological field test is to minimize borehole effects by smart practical solutions of in situ heating and temperature sensing. When borehole effects are substantial, concepts are needed to separate their contribution to the recorded signal. This is especially the case when heating and sensing devices are installed in grouted boreholes as permanent testing stations. Interpretation of a recorded response curve thus means solving a transient heat transfer problem with radial conduction through composite media. Here, a series of numerical models are set up to study the effect of the grout and the jacket of an actively heated fiber‐optic cable on the simulated thermal response measured along a heated borehole. The findings are utilized to further develop existing groundwater flow rate estimation procedures based on the moving infinite line source model. The developed approach is demonstrated in a case study in a borehole near a bank collapse site that penetrates different aquifer layers. Accordingly, significant local groundwater flow rates (9 × 10−7–5 × 10−6 m·s−1) are found that vary with depth. The values derived by the TRT interpretation closely match the expected rates (2 × 10−6–7 × 10−6 m·s−1), which supports the good applicability of the estimation procedure in the field.

Funder

National Natural Science Foundation of China

Publisher

American Geophysical Union (AGU)

Subject

Water Science and Technology

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