-
1
-
-
71849115521
-
Uncertainty analysis of wind energy potential assessment
-
[1] Kwon, S.D., Uncertainty analysis of wind energy potential assessment. Appl Energy 87 (2010), 856–865.
-
(2010)
Appl Energy
, vol.87
, pp. 856-865
-
-
Kwon, S.D.1
-
2
-
-
84921487903
-
Pumped hydro energy storage system: a technological review
-
[2] Rehman, S., Al-Hadhrami, L., Alam, M., Pumped hydro energy storage system: a technological review. Renew Sust Energy Rev 44 (2015), 586–598.
-
(2015)
Renew Sust Energy Rev
, vol.44
, pp. 586-598
-
-
Rehman, S.1
Al-Hadhrami, L.2
Alam, M.3
-
3
-
-
84908021778
-
Energy storage systems supporting increased penetration of renewables in islanded systems
-
[3] Rodrigues, E.M.G., Godina, R., Santos, S.F., Bizuayehu, A.W., Contreras, J., Catalao, J.P.S., Energy storage systems supporting increased penetration of renewables in islanded systems. Energy 75 (2014), 265–280.
-
(2014)
Energy
, vol.75
, pp. 265-280
-
-
Rodrigues, E.M.G.1
Godina, R.2
Santos, S.F.3
Bizuayehu, A.W.4
Contreras, J.5
Catalao, J.P.S.6
-
4
-
-
84912093100
-
Review of energy storage system for wind power integration support
-
[4] Zhao, H., Wu, Q., Hu, S., Xu, H., Rasmussen, C.N., Review of energy storage system for wind power integration support. Appl Energy 137 (2015), 545–553.
-
(2015)
Appl Energy
, vol.137
, pp. 545-553
-
-
Zhao, H.1
Wu, Q.2
Hu, S.3
Xu, H.4
Rasmussen, C.N.5
-
5
-
-
84892690606
-
Feasibility study and economic analysis of pumped hydro storage and battery storage for a renewable energy powered island
-
[5] Ma, T., Yang, H., Lu, L., Feasibility study and economic analysis of pumped hydro storage and battery storage for a renewable energy powered island. Energy Convers Manag 79 (2014), 387–397.
-
(2014)
Energy Convers Manag
, vol.79
, pp. 387-397
-
-
Ma, T.1
Yang, H.2
Lu, L.3
-
6
-
-
84912560037
-
Overview of current development in electrical energy storage technologies and the application potential in power system operation
-
[6] Luo, X., Wang, J., Dooner, M., Clarke, J., Overview of current development in electrical energy storage technologies and the application potential in power system operation. Appl Energy 137 (2015), 511–536.
-
(2015)
Appl Energy
, vol.137
, pp. 511-536
-
-
Luo, X.1
Wang, J.2
Dooner, M.3
Clarke, J.4
-
7
-
-
84871381835
-
A review of solar collectors and thermal energy storage in solar thermal applications
-
[7] Tian, Y., Zhao, C.Y., A review of solar collectors and thermal energy storage in solar thermal applications. Appl Energy 104 (2013), 538–553.
-
(2013)
Appl Energy
, vol.104
, pp. 538-553
-
-
Tian, Y.1
Zhao, C.Y.2
-
8
-
-
84928885549
-
Concept study of wind power utilizing direct thermal energy conversion and thermal energy storage
-
[8] Okazaki, T., Shirai, Y., Nakamura, T., Concept study of wind power utilizing direct thermal energy conversion and thermal energy storage. Renew Energy 83 (2015), 332–338.
-
(2015)
Renew Energy
, vol.83
, pp. 332-338
-
-
Okazaki, T.1
Shirai, Y.2
Nakamura, T.3
-
9
-
-
84926625997
-
Thermodynamic analysis of an integrated energy system based on compressed air energy storage (CAES) system and Kalina cycle
-
[9] Zhao, P., Wang, J., Dai, Y., Thermodynamic analysis of an integrated energy system based on compressed air energy storage (CAES) system and Kalina cycle. Energy Convers Manag 98 (2015), 161–172.
-
(2015)
Energy Convers Manag
, vol.98
, pp. 161-172
-
-
Zhao, P.1
Wang, J.2
Dai, Y.3
-
10
-
-
84858000179
-
Simulation and analysis of different adiabatic Compressed Air Energy Storage plant configurations
-
[10] Hartmann, N., Vöhringer, O., Kruck, C., Eltrop, L., Simulation and analysis of different adiabatic Compressed Air Energy Storage plant configurations. Appl Energy 93 (2012), 541–548.
-
(2012)
Appl Energy
, vol.93
, pp. 541-548
-
-
Hartmann, N.1
Vöhringer, O.2
Kruck, C.3
Eltrop, L.4
-
11
-
-
80053436906
-
Operating characteristics of constant-pressure compressed air energy storage (CAES) system combined with pumped hydro storage based on energy and exergy analysis
-
[11] Kima, T.M., Shin, D.G., Favrat, D., Operating characteristics of constant-pressure compressed air energy storage (CAES) system combined with pumped hydro storage based on energy and exergy analysis. Energy 36 (2011), 6220–6233.
-
(2011)
Energy
, vol.36
, pp. 6220-6233
-
-
Kima, T.M.1
Shin, D.G.2
Favrat, D.3
-
12
-
-
84960323970
-
Environmental impacts of balancing offshore wind power with compressed air energy storage (CAES)
-
[12] Bouman, E., Øberg, M., Hertwich, E., Environmental impacts of balancing offshore wind power with compressed air energy storage (CAES). Energy 95 (2016), 91–98.
-
(2016)
Energy
, vol.95
, pp. 91-98
-
-
Bouman, E.1
Øberg, M.2
Hertwich, E.3
-
13
-
-
84907484525
-
A simplified and unified analytical solution for temperature and pressure variations in compressed air energy storage caverns
-
[13] Xia, C., Zhou, Y., Zhou, S., Zhang, P., Wang, F., A simplified and unified analytical solution for temperature and pressure variations in compressed air energy storage caverns. Renew Energy 74 (2015), 718–726.
-
(2015)
Renew Energy
, vol.74
, pp. 718-726
-
-
Xia, C.1
Zhou, Y.2
Zhou, S.3
Zhang, P.4
Wang, F.5
-
14
-
-
84927711231
-
Fabrication and characterization of stearic acid/polyaniline composite with electrical conductivity as phase change materials for thermal energy storage
-
[14] Wang, Y., Ji, H., Shi, H., Zhang, T., Xia, T., Fabrication and characterization of stearic acid/polyaniline composite with electrical conductivity as phase change materials for thermal energy storage. Energy Convers Manag 98 (2015), 322–330.
-
(2015)
Energy Convers Manag
, vol.98
, pp. 322-330
-
-
Wang, Y.1
Ji, H.2
Shi, H.3
Zhang, T.4
Xia, T.5
-
15
-
-
84857689538
-
Thermal energy storage: “How previous findings determine current research priorities”
-
[15] Fernandes, D., Pitié, F., Cáceres, G., Baeyens, J., Thermal energy storage: “How previous findings determine current research priorities”. Energy 39 (2012), 246–257.
-
(2012)
Energy
, vol.39
, pp. 246-257
-
-
Fernandes, D.1
Pitié, F.2
Cáceres, G.3
Baeyens, J.4
-
16
-
-
84924856086
-
Performance comparison of two-tank direct and thermocline thermal energy storage systems for 1 MWe class concentrating solar power plants
-
[16] Cocco, D., Serra, F., Performance comparison of two-tank direct and thermocline thermal energy storage systems for 1 MWe class concentrating solar power plants. Energy 81 (2015), 526–536.
-
(2015)
Energy
, vol.81
, pp. 526-536
-
-
Cocco, D.1
Serra, F.2
-
17
-
-
84895922033
-
Evaluation of a three-phase sorption cycle for thermal energy storage
-
[17] Yu, N., Wang, R.Z., Lu, Z.S., Wang, L.W., Ishugah, T.F., Evaluation of a three-phase sorption cycle for thermal energy storage. Energy 67 (2014), 468–478.
-
(2014)
Energy
, vol.67
, pp. 468-478
-
-
Yu, N.1
Wang, R.Z.2
Lu, Z.S.3
Wang, L.W.4
Ishugah, T.F.5
-
18
-
-
84938861429
-
Three-dimensional simulation of high temperature latent heat thermal energy storage system assisted by finned heat pipes
-
[18] Tiari, S., Qiu, S., Three-dimensional simulation of high temperature latent heat thermal energy storage system assisted by finned heat pipes. Energy Convers Manag 105 (2015), 260–271.
-
(2015)
Energy Convers Manag
, vol.105
, pp. 260-271
-
-
Tiari, S.1
Qiu, S.2
-
19
-
-
84940062256
-
Performance evaluation of various cryogenic energy storage systems
-
[19] Abdo, R., Pedro, H., Koury, R., Machado, L., Coimbra, C., Porto, M., Performance evaluation of various cryogenic energy storage systems. Energy 90 (2015), 1024–1032.
-
(2015)
Energy
, vol.90
, pp. 1024-1032
-
-
Abdo, R.1
Pedro, H.2
Koury, R.3
Machado, L.4
Coimbra, C.5
Porto, M.6
-
20
-
-
84884224931
-
Thermodynamic efficiency of pumped heat electricity storage
-
[20] Thess, A., Thermodynamic efficiency of pumped heat electricity storage. Phys Rev Lett, 111, 2013, 110602.
-
(2013)
Phys Rev Lett
, vol.111
, pp. 110602
-
-
Thess, A.1
-
21
-
-
84865419723
-
Conceptual design of a thermo-electrical energy storage system based on heat integration of thermodynamic cycles-part A: methodology and base case
-
[21] Morandin, M., Maréchal, F., Mercangöz, M., Buchter, F., Conceptual design of a thermo-electrical energy storage system based on heat integration of thermodynamic cycles-part A: methodology and base case. Energy 45 (2012), 375–385.
-
(2012)
Energy
, vol.45
, pp. 375-385
-
-
Morandin, M.1
Maréchal, F.2
Mercangöz, M.3
Buchter, F.4
-
22
-
-
84865410986
-
Conceptual design of a thermo-electrical energy storage system based on heat integration of thermodynamic cycles-part B: alternative system configurations
-
[22] Morandin, M., Maréchal, F., Mercangöz, M., Buchter, F., Conceptual design of a thermo-electrical energy storage system based on heat integration of thermodynamic cycles-part B: alternative system configurations. Energy 45 (2012), 386–396.
-
(2012)
Energy
, vol.45
, pp. 386-396
-
-
Morandin, M.1
Maréchal, F.2
Mercangöz, M.3
Buchter, F.4
-
23
-
-
84927128421
-
Analysis of pumped heat electricity storage process using exponential matrix solutions
-
[23] Ni, F., Caram, H.S., Analysis of pumped heat electricity storage process using exponential matrix solutions. Appl Therm Eng 84 (2015), 34–44.
-
(2015)
Appl Therm Eng
, vol.84
, pp. 34-44
-
-
Ni, F.1
Caram, H.S.2
-
24
-
-
74649085009
-
A thermal energy storage process for large scale electric applications
-
[24] Desrues, T., Ruer, J., Marty, P., Fourmigué, J.F., A thermal energy storage process for large scale electric applications. Appl Therm Eng 30 (2010), 425–432.
-
(2010)
Appl Therm Eng
, vol.30
, pp. 425-432
-
-
Desrues, T.1
Ruer, J.2
Marty, P.3
Fourmigué, J.F.4
-
25
-
-
79959856865
-
Loss analysis of thermal reservoirs for electrical energy storage schemes
-
[25] White, A., Loss analysis of thermal reservoirs for electrical energy storage schemes. Appl Energy 88 (2011), 4150–4159.
-
(2011)
Appl Energy
, vol.88
, pp. 4150-4159
-
-
White, A.1
-
26
-
-
84877856356
-
Thermodynamic analysis of pumped thermal electricity storage
-
[26] White, A., Parks, G., Markides, C.N., Thermodynamic analysis of pumped thermal electricity storage. Appl Therm Eng 53 (2013), 291–298.
-
(2013)
Appl Therm Eng
, vol.53
, pp. 291-298
-
-
White, A.1
Parks, G.2
Markides, C.N.3
-
27
-
-
84912104394
-
Parametric studies and optimisation of pumped thermal electricity storage
-
[27] McTigue, J.D., White, A.J., Markides, C.N., Parametric studies and optimisation of pumped thermal electricity storage. Appl Energy 137 (2015), 800–811.
-
(2015)
Appl Energy
, vol.137
, pp. 800-811
-
-
McTigue, J.D.1
White, A.J.2
Markides, C.N.3
-
28
-
-
84904790318
-
Wave propagation and thermodynamic losses in packed-bed thermal reservoirs for energy storage
-
[28] White, A., McTigue, J., Markides, C., Wave propagation and thermodynamic losses in packed-bed thermal reservoirs for energy storage. Appl Energy 130 (2014), 648–657.
-
(2014)
Appl Energy
, vol.130
, pp. 648-657
-
-
White, A.1
McTigue, J.2
Markides, C.3
-
29
-
-
84856228758
-
Concept and development of a pumped heat electricity storage device
-
[29] Howes, J., Concept and development of a pumped heat electricity storage device. Proc IEEE 100 (2012), 493–503.
-
(2012)
Proc IEEE
, vol.100
, pp. 493-503
-
-
Howes, J.1
-
30
-
-
84963813265
-
Comment on “thermodynamic efficiency of pumped heat electricity storage”
-
[30] Chen, J., Guo, J., Comment on “thermodynamic efficiency of pumped heat electricity storage”. Phys Rev Lett, 116, 2016, 158901.
-
(2016)
Phys Rev Lett
, vol.116
, pp. 158901
-
-
Chen, J.1
Guo, J.2
-
31
-
-
84962157647
-
Performance optimization and comparison of pumped thermal and pumped cryogenic electricity storage systems
-
[31] Guo, J., Cai, L., Chen, J., Zhou, Y., Performance optimization and comparison of pumped thermal and pumped cryogenic electricity storage systems. Energy 106 (2016), 260–269.
-
(2016)
Energy
, vol.106
, pp. 260-269
-
-
Guo, J.1
Cai, L.2
Chen, J.3
Zhou, Y.4
-
33
-
-
13344277325
-
An overview of current and future sustainable gas turbine technologies
-
[33] Poullikkas, A., An overview of current and future sustainable gas turbine technologies. Renew Sust Energy Rev 9 (2005), 405–443.
-
(2005)
Renew Sust Energy Rev
, vol.9
, pp. 405-443
-
-
Poullikkas, A.1
-
34
-
-
33749660843
-
Comparison on the optimum performances of the irreversible Brayton refrigeration cycles with regeneration and non-regeneration
-
[34] Zhang, Y., Chen, J., He, J., Wu, C., Comparison on the optimum performances of the irreversible Brayton refrigeration cycles with regeneration and non-regeneration. Appl Therm Eng 27 (2007), 401–407.
-
(2007)
Appl Therm Eng
, vol.27
, pp. 401-407
-
-
Zhang, Y.1
Chen, J.2
He, J.3
Wu, C.4
-
35
-
-
33845693654
-
The regenerative criteria of an irreversible Brayton heat engine and its general optimum performance characteristics
-
[35] Zhang, Y., Ou, C., Lin, B., Chen, J., The regenerative criteria of an irreversible Brayton heat engine and its general optimum performance characteristics. J Energy Resour Technol 128 (2006), 216–222.
-
(2006)
J Energy Resour Technol
, vol.128
, pp. 216-222
-
-
Zhang, Y.1
Ou, C.2
Lin, B.3
Chen, J.4
-
36
-
-
0006931260
-
Power performance of a nonisentropic Brayton cycle
-
[36] Wu, C., Kiang, R., Power performance of a nonisentropic Brayton cycle. J Eng Gas Turbines Power 113 (1991), 501–503.
-
(1991)
J Eng Gas Turbines Power
, vol.113
, pp. 501-503
-
-
Wu, C.1
Kiang, R.2
-
37
-
-
84952361744
-
Thermodynamic analysis and optimization for an irreversible heat pump working on reversed Brayton cycle
-
[37] Ahmadi, M., Ahmadi, M., Pourfayaz, F., Bidi, M., Thermodynamic analysis and optimization for an irreversible heat pump working on reversed Brayton cycle. Energy Convers Manag 110 (2016), 260–267.
-
(2016)
Energy Convers Manag
, vol.110
, pp. 260-267
-
-
Ahmadi, M.1
Ahmadi, M.2
Pourfayaz, F.3
Bidi, M.4
-
38
-
-
84951233591
-
Efficiency of a Carnot engine at maximum power output
-
[38] Curzon, F.L., Ahlborn, B., Efficiency of a Carnot engine at maximum power output. Am J Phys 43 (1975), 22–24.
-
(1975)
Am J Phys
, vol.43
, pp. 22-24
-
-
Curzon, F.L.1
Ahlborn, B.2
-
39
-
-
0042472013
-
The effect of heat transfer law on the performance of a class of two-heat-sources engines
-
[39] Chen, J., The effect of heat transfer law on the performance of a class of two-heat-sources engines. J Eng Therm Energy Power 6 (1991), 57–62.
-
(1991)
J Eng Therm Energy Power
, vol.6
, pp. 57-62
-
-
Chen, J.1
-
40
-
-
0042226537
-
Optimal performance of an irreversible Carnot heat pump
-
[40] Yan, Z., Chen, J., Optimal performance of an irreversible Carnot heat pump. Int J Energy Environ Econ 2 (1992), 63–66.
-
(1992)
Int J Energy Environ Econ
, vol.2
, pp. 63-66
-
-
Yan, Z.1
Chen, J.2
-
41
-
-
0025385361
-
A class of irreversible Carnot refrigeration cycles with a general heat transfer law
-
[41] Yan, Z., Chen, J., A class of irreversible Carnot refrigeration cycles with a general heat transfer law. J Phys D Appl Phys 23 (1990), 136–141.
-
(1990)
J Phys D Appl Phys
, vol.23
, pp. 136-141
-
-
Yan, Z.1
Chen, J.2
-
42
-
-
0000631445
-
The effect of heat-transfer law on performance of a two-heat-source endoreversible cycle
-
[42] Chen, L., Yan, Z., The effect of heat-transfer law on performance of a two-heat-source endoreversible cycle. J Chem Phys, 90, 1989, 3740.
-
(1989)
J Chem Phys
, vol.90
, pp. 3740
-
-
Chen, L.1
Yan, Z.2
-
43
-
-
84872949894
-
Coefficient of performance under optimized figure of merit in minimally nonlinear irreversible refrigerator
-
[43] Izumida, Y., Okuda, K., Hernández, A.C., Roco, J.M.M., Coefficient of performance under optimized figure of merit in minimally nonlinear irreversible refrigerator. Europhys Lett, 101, 2013, 10005.
-
(2013)
Europhys Lett
, vol.101
, pp. 10005
-
-
Izumida, Y.1
Okuda, K.2
Hernández, A.C.3
Roco, J.M.M.4
-
44
-
-
84947228768
-
Performance characteristics of low-dissipative generalized Carnot cycles with external leakage losses
-
[44] Huang, C., Guo, J., Chen, J., Performance characteristics of low-dissipative generalized Carnot cycles with external leakage losses. Chin Phys B, 24, 2015, 110506.
-
(2015)
Chin Phys B
, vol.24
, pp. 110506
-
-
Huang, C.1
Guo, J.2
Chen, J.3
-
45
-
-
84855546600
-
Efficiency at maximum power of minimally nonlinear irreversible heat engines
-
[45] Izumida, Y., Okuda, K., Efficiency at maximum power of minimally nonlinear irreversible heat engines. Europhys Lett, 97, 2012, 10004.
-
(2012)
Europhys Lett
, vol.97
, pp. 10004
-
-
Izumida, Y.1
Okuda, K.2
-
46
-
-
84900458718
-
Work output and efficiency at maximum power of linear irreversible heat engines operating with a finite-sized heat source
-
[46] Izumida, Y., Okuda, K., Work output and efficiency at maximum power of linear irreversible heat engines operating with a finite-sized heat source. Phys Rev Lett, 112, 2014, 180603.
-
(2014)
Phys Rev Lett
, vol.112
, pp. 180603
-
-
Izumida, Y.1
Okuda, K.2
-
47
-
-
0032139271
-
Effectiveness enhancement of a thermal regenerator in an oscillating flow
-
[47] Lee, G., Kang, B., Lee, J., Effectiveness enhancement of a thermal regenerator in an oscillating flow. Appl Therm Eng 18 (1998), 653–660.
-
(1998)
Appl Therm Eng
, vol.18
, pp. 653-660
-
-
Lee, G.1
Kang, B.2
Lee, J.3
-
48
-
-
0033101926
-
Performance analysis for endoreversible closed regenerated Brayton heat pump cycles
-
[48] Ni, N., Chen, L., Wu, C., Sun, F., Performance analysis for endoreversible closed regenerated Brayton heat pump cycles. Energy Convers Manag 40 (1999), 393–406.
-
(1999)
Energy Convers Manag
, vol.40
, pp. 393-406
-
-
Ni, N.1
Chen, L.2
Wu, C.3
Sun, F.4
-
49
-
-
84949672349
-
An efficient strategy exploiting the waste heat in a solid oxide fuel cell
-
[49] Wang, Y., Cai, L., Liu, T., Wang, J., Chen, J., An efficient strategy exploiting the waste heat in a solid oxide fuel cell. Energy 93 (2015), 900–907.
-
(2015)
Energy
, vol.93
, pp. 900-907
-
-
Wang, Y.1
Cai, L.2
Liu, T.3
Wang, J.4
Chen, J.5
|