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Soil thermal conductivity prediction for district heating pre-insulated pipeline in operation. (2012). Zun, Iztok ; Rek, Zlatko ; Bajric, Suvad ; Perpar, Matjaz .
In: Energy.
RePEc:eee:energy:v:44:y:2012:i:1:p:197-210.

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Cited: 9

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Cites: 16

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Cocites: 36

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Coauthors: 0

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Citations

Citations received by this document

  1. A data-driven method for heat loss estimation from district heating service pipes using heat meter- and GIS data. (2023). Nielsen, Brian Kongsgaard ; Bentsen, Fredrik ; Ostergaard, Peter Friis ; Fester, Jakob.
    In: Energy.
    RePEc:eee:energy:v:277:y:2023:i:c:s0360544223011076.

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  2. .

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  3. The Ability of a Soil Temperature Gradient-Based Methodology to Detect Leaks from Pipelines in Buried District Heating Channels. (2021). Rek, Zlatko ; Perpar, Matja.
    In: Energies.
    RePEc:gam:jeners:v:14:y:2021:i:18:p:5712-:d:633102.

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  4. Impact of thermal masses on the peak load in district heating systems. (2021). Guelpa, Elisa.
    In: Energy.
    RePEc:eee:energy:v:214:y:2021:i:c:s0360544220319563.

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  5. Soil temperature gradient as a useful tool for small water leakage detection from district heating pipes in buried channels. (2020). Rek, Zlatko ; Perpar, Matja.
    In: Energy.
    RePEc:eee:energy:v:201:y:2020:i:c:s036054422030791x.

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  6. Regional waste heat valorisation: A mixed integer linear programming method for energy service companies. (2019). Marechal, Franois ; Aggoune, Riad ; Kantor, Ivan ; Mian, Alberto ; Bertrand, Alexandre.
    In: Energy.
    RePEc:eee:energy:v:167:y:2019:i:c:p:454-468.

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  7. District heating and cooling optimization and enhancement – Towards integration of renewables, storage and smart grid. (2017). Li, YU ; Zhu, Hanxing ; Rezgui, Yacine.
    In: Renewable and Sustainable Energy Reviews.
    RePEc:eee:rensus:v:72:y:2017:i:c:p:281-294.

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  8. Thermal transient prediction of district heating pipeline: Optimal selection of the time and spatial steps for fast and accurate calculation. (2017). Zhang, Huan ; Wang, Yaran ; Lu, Gang ; You, Shijun ; Miao, Qingwei ; Zheng, Wandong.
    In: Applied Energy.
    RePEc:eee:appene:v:206:y:2017:i:c:p:900-910.

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  9. Investigating the relationship between air and ground temperature variations in shallow depths in northern Greece. (2014). Tsilingiridis, G. ; Papakostas, K..
    In: Energy.
    RePEc:eee:energy:v:73:y:2014:i:c:p:1007-1016.

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References

References cited by this document

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  2. Bøhm, B. On transient heat losses from buried district heating pipes. 2000 International Journal of Energy Research. 24 1311-1334
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  3. Bøhm, B. ; Kristjansson, H. Single, twin and triple buried heating pipes: on potential savings in heat losses and costs. 2005 International Journal of Energy Research. 29 1301-1312
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  4. Bozzoli, F. ; Pagliarini, G. ; Raineri, S. ; Schiavi, L. Estimation of soil and grout thermal properties through a TSPEP (two-step parameter estimation procedure) applied to TRT (thermal response test) data. 2011 Energy. 36 839-846

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  6. Dalla Rosa, A. ; Christensen, J.E. Low-energy district heating in energy-efficient building areas. 2011 Energy. 36 6890-6899

  7. Dalla Rosa, A. ; Li, H. ; Svendsen, S. Method for optimal design of pipes for low-energy district heating, with focus on heat losses. 2011 Energy. 36 2407-2418

  8. EN 13941:2003. Design and installation of pre-insulated bonded pipe systems for district heating.
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  9. Haenel, R. ; Bram, K. Die Beeinflussung des Temperaturfeldes im Boden durch den Einsatz von Warmepumpen. 1978 Niedersachsisches Landesamt fur Bodenforschung: Hannover
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Cocites

Documents in RePEc which have cited the same bibliography

  1. Oscillatory thermal response tests to estimate the ground thermal diffusivity. (2024). Giordano, Nicolo ; Raymond, Jasmin ; Lamarche, Louis.
    In: Applied Energy.
    RePEc:eee:appene:v:353:y:2024:i:pa:s0306261923014423.

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  2. Study on the influence of buried pipe fault on the operation of ground source heat pump system. (2023). Li, Gui ; Zhang, Xueping ; Yang, Lingyan ; Bi, Weiqiang.
    In: Renewable Energy.
    RePEc:eee:renene:v:210:y:2023:i:c:p:12-25.

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  3. Tikhonov regularization stabilizes multi-parameter estimation of geothermal heat exchangers. (2023). Ck, Alvin ; Li, Yong ; Du, Yufang.
    In: Energy.
    RePEc:eee:energy:v:262:y:2023:i:pb:s0360544222023611.

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  4. Estimation of Ground Thermal Properties of Shallow Coaxial Borehole Heat Exchanger Using an Improved Parameter Estimation Method. (2022). Fang, Han ; Fu, Qiang ; Wang, Changlong ; Lu, Jinli.
    In: Sustainability.
    RePEc:gam:jsusta:v:14:y:2022:i:12:p:7356-:d:839999.

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  5. Vertical ground heat exchanger parameter characterization through a compound design of experiments. (2022). Casanova-Pelaez, Pedro J ; Gutierrez-Montes, Candido ; Extremera-Jimenez, Alejandro J ; Cruz-Peragon, Fernando.
    In: Renewable Energy.
    RePEc:eee:renene:v:199:y:2022:i:c:p:1361-1371.

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  6. Optimal design of a hybrid ground source heat pump for an official building with thermal load imbalance and limited space for the ground heat exchanger. (2022). Lopez-Garcia, R ; Palomar-Carnicero, J M ; Gomez-De, F J ; Cruz-Peragon, F.
    In: Renewable Energy.
    RePEc:eee:renene:v:195:y:2022:i:c:p:381-394.

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  7. Effect of temperature measurement error on parameters estimation accuracy for thermal response tests. (2022). Li, Xiuming ; Han, Zongwei ; Zhang, Xueping.
    In: Renewable Energy.
    RePEc:eee:renene:v:185:y:2022:i:c:p:230-240.

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  8. Probabilistic uncertainty quantification of borehole thermal resistance in real-world scenarios. (2022). Choi, Wonjun ; Kikumoto, Hideki ; Ooka, Ryozo.
    In: Energy.
    RePEc:eee:energy:v:254:y:2022:i:pc:s0360544222013032.

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  9. Thermal response tests for the identification of soil thermal parameters: A review. (2021). Li, Xiuming ; Zhang, Hongzhi ; Ji, Qiang.
    In: Renewable Energy.
    RePEc:eee:renene:v:173:y:2021:i:c:p:1123-1135.

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  10. Study on high-precision identification method of ground thermal properties based on neural network model. (2021). Yang, Lingyan ; Li, Xiuming ; Ji, Qiang ; Meng, Xinwei ; Han, Zongwei ; Zhang, Xueping.
    In: Renewable Energy.
    RePEc:eee:renene:v:163:y:2021:i:c:p:1838-1848.

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  11. The coupled two-step parameter estimation procedure for borehole thermal resistance in thermal response test. (2020). Xu, Hang ; Zhang, Changxing ; Kong, Xiangqiang ; Sun, Shicai ; Fan, Jianhua.
    In: Renewable Energy.
    RePEc:eee:renene:v:154:y:2020:i:c:p:672-683.

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  12. Estimation of ground thermal properties for coaxial BHE through distributed thermal response test. (2020). Cheng, Wen-Long ; Xie, Kun ; Wang, Xiang-Yang ; Nian, Yong-Le.
    In: Renewable Energy.
    RePEc:eee:renene:v:152:y:2020:i:c:p:1209-1219.

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  13. Step-wise algorithm for estimating multi-parameter of the ground and geothermal heat exchangers from thermal response tests. (2020). Liu, Gang ; Zhang, Liwen.
    In: Renewable Energy.
    RePEc:eee:renene:v:150:y:2020:i:c:p:435-442.

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  14. Robust identification of volumetric heat capacity and analysis of thermal response tests by Bayesian inference with correlated residuals. (2020). Marcotte, Denis ; Pasquier, Philippe.
    In: Applied Energy.
    RePEc:eee:appene:v:261:y:2020:i:c:s0306261919320811.

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  15. Effect of vertical ground temperature distribution on parameter estimation of in-situ thermal response test with unstable heat rate. (2019). Kong, Xiangqiang ; Liu, Yufeng ; Song, Wei ; Zhang, Changxing ; Wang, Qing.
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  16. Estimation of thermal properties of soil and backfilling material from thermal response tests (TRTs) for exploiting shallow geothermal energy: Sensitivity, identifiability, and uncertainty. (2019). Li, Min ; Liu, Gang ; Zhang, Liwen.
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    RePEc:eee:renene:v:132:y:2019:i:c:p:1263-1270.

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  17. Field demonstration of a first constant-temperature thermal response test with both heat injection and extraction for ground source heat pump systems. (2019). Lee, W L ; Jia, Jie ; Cheng, Yuanda.
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  18. Investigation of the effect of seasonal variation in ground temperature on thermal response tests. (2018). Jensen-Page, Linden ; Johnston, Ian W ; Bidarmaghz, Asal ; Narsilio, Guillermo A.
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  19. Bayesian inference for thermal response test parameter estimation and uncertainty assessment. (2018). Choi, Wonjun ; Ooka, Ryozo ; Choudhary, Ruchi ; Kikumoto, Hideki.
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  20. Scientific achievements and regulation of shallow geothermal systems in six European countries – A review. (2017). Nagy, Georgina ; Somogyi, Viola ; Sebestyen, Viktor.
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  21. A computationally efficient pseudo-3D model for the numerical analysis of borehole heat exchangers. (2017). Saito, Takeshi ; Brunetti, Giuseppe ; Imnek, Jii.
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  22. Effect of natural convection on thermal response test conducted in saturated porous formation: Comparison of gravel-backfilled and cement-grouted borehole heat exchangers. (2016). Choi, Wonjun ; Ooka, Ryozo.
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  23. Effect of disturbance on thermal response test, part 1: Development of disturbance analytical model, parametric study, and sensitivity analysis. (2016). Choi, Wonjun ; Ooka, Ryozo.
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  24. Effect of disturbance on thermal response test, part 2: Numerical study of applicability and limitation of infinite line source model for interpretation under disturbance from outdoor environment. (2016). Choi, Wonjun ; Ooka, Ryozo.
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  25. DEA (data envelopment analysis)-assisted supporting measures for ground coupled heat pumps implementing in Italy: A case study. (2015). Boubaker, K ; Longo, L ; Cocchi, S ; Moneti, M ; Bocci, E ; di Carlo, A ; Pallozzi, V ; Savuto, E ; Vecchione, L ; Carlini, M ; Castellucci, S ; Colantoni, A.
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  26. Parameter estimation of in-situ thermal response test with unstable heat rate. (2015). Zhang, Changxing ; Peng, Donggen ; Sun, Shicai ; Song, Wei.
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  32. New g-functions for the hourly simulation of double U-tube borehole heat exchanger fields. (2014). Zanchini, E. ; Lazzari, S..
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  33. Temperature distribution in a field of long Borehole Heat Exchangers (BHEs) subjected to a monthly averaged heat flux. (2013). Zanchini, E. ; Lazzari, S..
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  34. Soil thermal conductivity prediction for district heating pre-insulated pipeline in operation. (2012). Zun, Iztok ; Rek, Zlatko ; Bajric, Suvad ; Perpar, Matjaz .
    In: Energy.
    RePEc:eee:energy:v:44:y:2012:i:1:p:197-210.

    Full description at Econpapers || Download paper

  35. New temperature response functions (G functions) for pile and borehole ground heat exchangers based on composite-medium line-source theory. (2012). Lai, Alvin C. K., ; Li, Min.
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