闫振国, 张正威, 杨军. Analysis of Heat Transfer Performance of Energy Pile Considering Heat Capacity of Pile Body[J]. 2019, 39(4): 599-606. DOI: 10.13409/j.cnki.jdpme.2019.04.009.
Analysis of Heat Transfer Performance of Energy Pile Considering Heat Capacity of Pile Body
Compared with the traditional used vertical borehole ground heat exchanger
energy pile has a larger diameter.The effect of heat capacity of pile body on heat transfer needs to be considered.The analytical solutions of infinite line-source model and infinite pile-source model were used to compare the heat transfer process within energy piles of different heat capacities in saturated clay
so as to examine the influence of heat capacity on heat transfer performance.For pile bodies made of concrete
the heat capacity difference caused by the different types of coarse aggregate had an impact on initial heat transfer performance.The pile diameter was seen as one of the major factors affecting heat transfer.The heat capacity difference between concrete piles and steel piles had a larger impact on heat transfer performance.The results showed that the whole heat transfer process is divided into two phases.In the first phase
the speed of heat transfer from the source to the inside and outside of the pile depends on the relative value of the thermal diffusion coefficient of the pile body and soils around the pile.The larger the pile’s thermal diffusion coefficient is
the faster the heat transfer to the inside of the pile
the lower the excess temperature outside the pile is.When the temperature inside the pile reaches a balance
the amount of heat transferred to the inside of the pile depends on the temperature of the soil around the pile and the heat capacity of the pile body.For the first phase
the pile-source model is more precise than the line-source model in describing the heat transfer performance.For the second phase
the difference between the results of the two models is negligible.
Numerical simulation of a novel spiral type ground heat exchanger for enhancing heat transfer performance of geothermal heat pump [J] . Reza Saeidi,Younes Noorollahi,Vahid Esfahanian. Energy Conversion and Management . 2018
A novel truncated cone helix energy pile: Modelling and investigations of thermal performance [J] . Guangqin Huang,Xiaofeng Yang,Yajiao Liu,Chunlong Zhuang,Hongyu Zhang,Jun Lu. Energy & Buildings . 2018
Energy piles for ground source heat pump applications: Comparison of heat transfer performance for different design and operating parameters [J] . Alberto Carotenuto,Pasquale Marotta,Nicola Massarotti,Alessandro Mauro,Gennaro Normino. Applied Thermal Engineering . 2017
Analysis and design methods for energy geostructures [J] . Peter Bourne-Webb,Sebastien Burlon,Saqib Javed,Sylvia Kürten,Fleur Loveridge. Renewable and Sustainable Energy Reviews . 2016
Review of analytical models for heat transfer by vertical ground heat exchangers (GHEs): A perspective of time and space scales [J] . Min Li,Alvin C.K. Lai. Applied Energy . 2015
Constructability and heat exchange efficiency of large diameter cast-in-place energy piles with various configurations of heat exchange pipe [J] . Sangwoo Park,Chihun Sung,Kyoungsik Jung,Byonghu Sohn,Alexis Chauchois,Hangseok Choi. Applied Thermal Engineering . 2015
Applications and Development of Modern Steel Pile Technology [J] . Veli-Matti Uotinen,Jukka Rantala. Procedia Engineering . 2013
Development of spiral heat source model for novel pile ground heat exchangers [J] . Yi Man,Hongxing Yang,Nairen Diao,Ping Cui,Lin Lu,Zhaohong Fang. HVAC&R Research . 2011 (6)
Heat transfer analysis of pile geothermal heat exchangers with spiral coils [J] . Ping Cui,Xin Li,Yi Man,Zhaohong Fang. Applied Energy . 2011 (11)
A new model and analytical solutions for borehole and pile ground heat exchangers [J] . Yi Man,Hongxing Yang,Nairen Diao,Junhong Liu,Zhaohong Fang. International Journal of Heat and Mass Transfer . 2010 (13)