Interpretation of the first hours of a thermal response test using the time derivative of the temperature

被引:25
作者
Pasquier, Philippe [1 ]
机构
[1] Polytech Montreal, Dept Civil Geol & Min Engn, Ctr Ville, POB 6079, Montreal, PQ H3C 3A7, Canada
关键词
Thermal response test; Ground thermal properties; Ground heat exchanger; Time derivative of the temperature; Parameter estimation; Transient needle probe; BOREHOLE HEAT-EXCHANGERS; PARAMETER-ESTIMATION; PUMP SYSTEMS; CONDUCTIVITY; SIMULATION; RESISTANCE; MODEL; PERFORMANCE; CAPACITY; AVERAGE;
D O I
10.1016/j.apenergy.2018.01.022
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Four new first-order approximation models using the time derivative of fluid temperature to interpret the first hours of the heating and recovery phases of a thermal response test are presented. The time derivative being sensitive to experimental noise and artifacts, the gain brought by various filtering operations is discussed and illustrated for real temperature measurements. The new interpretation models are tested on two synthetic and three real data sets. It is shown that analyzing the time derivatives measured during the first three hours of a real thermal response test with a constrained first-order approximation model can provide a thermal conductivity estimation within 10% of a reference value. The effect of the borehole equivalent resistance and of ground and grout thermal conductivity on the time derivative is also analyzed with a thermal resistance and capacity model to identify possible limitations of the linear models for practical applications. These results provide the first evidences that the time derivative can be used to interpret a thermal response test and open the door to a new family of interpretation methods that could potentially shorten the duration of thermal response tests from 72 to 3 h or allow interpretation of tests when only the first few hours are available.
引用
收藏
页码:56 / 75
页数:20
相关论文
共 59 条
[1]   Distributed thermal response tests on a multi-pipe coaxial borehole heat exchanger [J].
Acuna, Jose ;
Mogensen, Palne ;
Palm, Bjorn .
HVAC&R RESEARCH, 2011, 17 (06) :1012-1029
[2]   Exergy analysis of a two-stage ground source heat pump with a vertical bore for residential space conditioning under simulated occupancy [J].
Ally, Moonis R. ;
Munk, Jeffrey D. ;
Baxter, Van D. ;
Gehl, Anthony C. .
APPLIED ENERGY, 2015, 155 :502-514
[3]  
[Anonymous], 1964, Handbook of mathematical functions with formulas, graphs, and mathematical tables
[4]  
Bear J., 1979, Hydraulics of Groundwater
[5]  
Beier R.A., 2003, ASHRAE T, V109, P475
[6]  
BEIER R.A., 2003, ASHRAE Transactions, V109, P463
[7]   Weighted average of inlet and outlet temperatures in borehole heat exchangers [J].
Beier, Richard A. ;
Spitler, Jeffrey D. .
APPLIED ENERGY, 2016, 174 :118-129
[9]  
BOURDET D, 1983, WORLD OIL, V196, P95
[10]  
Bourdet D., 1989, SPE FORMATION EVAL, V40, P293, DOI [DOI 10.2118/12777-PA, 10.2118/12777-PA]