scholarly journals Fast and Accurate Calculation of the Soil Temperature Distribution Around Ground Heat Exchanger Based on a Response Factor Model

Author(s):  
Tian You ◽  
Xianting Li ◽  
Wenxing Shi ◽  
Baolong Wang
Energies ◽  
2020 ◽  
Vol 13 (16) ◽  
pp. 4058
Author(s):  
Matt S. Mitchell ◽  
Jeffrey D. Spitler

This paper presents an enhanced vertical ground heat exchanger (GHE) model for whole-building energy simulation (WBES). WBES programs generally have computational constraints that affect the development and implementation of component simulation sub-models. WBES programs require models that execute quickly and efficiently due to how the programs are utilized by design engineers. WBES programs also require models to be formulated so their performance can be determined from boundary conditions set by upstream components and environmental conditions. The GHE model developed during this work utilizes an existing response factor model and extends its capabilities to accurately and robustly simulate at timesteps that are shorter than the GHE transit time. This was accomplished by developing a simplified dynamic borehole model and then exercising that model to generate exiting fluid temperature response factors. This approach blends numerical and analytical modeling methods. The existing response factor models are then extended to incorporate the exiting fluid temperature response factor to provide a better estimate of the GHE exiting fluid temperature at short simulation timesteps.


Author(s):  
Y P Zhang ◽  
G S Jia ◽  
Z D Ma ◽  
Z H Xia ◽  
Y. Cao ◽  
...  

2016 ◽  
Vol 10 (2) ◽  
pp. 183-192 ◽  
Author(s):  
Tian You ◽  
Wenxing Shi ◽  
Baolong Wang ◽  
Huan Wang ◽  
Xianting Li

2020 ◽  
Vol 205 ◽  
pp. 07006
Author(s):  
Omid Habibzadeh-Bigdarvish ◽  
Xinbao Yu ◽  
Anand J. Puppala

In recent years, the geothermal heat pump de-icing system (GHDS) is introduced as a sustainable solution for bridge deck de-icing, which utilizes renewable geothermal energy. Existing GHDS designs mostly rely upon hydronic loops embedded in concrete decks. To extend the GHDS for existing bridges, a new external hydronic deck has been developed recently, which employs a hydronic pipe being attached to the bottom surface of the bridge deck. In this study, the performance of the externally heated geothermal bridge deck is investigated through winter deicing and summer recharging tests with the focus on the ground loop heat exchanger (GLHE), a key component of the GHDS. The test results show that the de-icing system was successful in maintaining the deck surface temperature above freezing in all winter tests. The soil temperature measurements indicate, the 132.5 m vertical U-tube ground heat exchanger is benefited from the undisturbed soil temperature of around 21 °C. The overall average hourly heat extraction of 0.67 kW during winter operation and average hourly heat injection of 0.69 kW during the summer operation were observed. Also, the ground thermal recharge test showed the increase of undisturbed soil temperature at 1.5 m from the geothermal borehole by 0.36 °C after 50 days of system operation.


Sign in / Sign up

Export Citation Format

Share Document