TY - JOUR
T1 - Experimental investigation of the thermal performance of a horizontal two-phase loop thermosiphon suitable for solar parabolic trough receivers operating at 200–400 °C
AU - Wang, Yinfeng
AU - Lu, Beibei
AU - Chen, Haijun
AU - Fan, Hongtu
AU - Taylor, Robert A.
AU - Zhu, Yuezhao
N1 - Publisher Copyright:
© 2017 Elsevier Ltd
PY - 2017
Y1 - 2017
N2 - A horizontal two-phase loop thermosiphon (HLTS) has been developed as a potential receiver for parabolic trough collectors (PTCs). The design consists of an evaporator (which is horizontally arranged), a condenser, a riser, and a downcomer with a U-turn. This HLTS was designed to push to higher temperatures than previous HLTS studies (200–400 °C) by using Dowtherm A as the working fluid. An indoor experimental prototype was built to investigate its heat transfer performance. Three regimes: start-up, transition and steady operation were analyzed. A unique feature of this design, the U-turn compensation tube, was shown be helpful during the transition and steady operation regimes since it forms a liquid seal to avoid bidirectional flow in the loop. However, solidification of the working fluid in the U-turn section was found to adversely impact the start-up regime in the case of cold (e.g. frozen) initial conditions. The system was tested up to a heat flux value 11.22 kW/m2. The thermal resistance and the two-phase heat transfer coefficient were demonstrated to be considerably better than prior literature. Moreover, the present HLTS was shown to be theoretically limited to 85.6 kW/m2, thus demonstrating that this type of system can meet the needs of intermediate temperature PTC receivers.
AB - A horizontal two-phase loop thermosiphon (HLTS) has been developed as a potential receiver for parabolic trough collectors (PTCs). The design consists of an evaporator (which is horizontally arranged), a condenser, a riser, and a downcomer with a U-turn. This HLTS was designed to push to higher temperatures than previous HLTS studies (200–400 °C) by using Dowtherm A as the working fluid. An indoor experimental prototype was built to investigate its heat transfer performance. Three regimes: start-up, transition and steady operation were analyzed. A unique feature of this design, the U-turn compensation tube, was shown be helpful during the transition and steady operation regimes since it forms a liquid seal to avoid bidirectional flow in the loop. However, solidification of the working fluid in the U-turn section was found to adversely impact the start-up regime in the case of cold (e.g. frozen) initial conditions. The system was tested up to a heat flux value 11.22 kW/m2. The thermal resistance and the two-phase heat transfer coefficient were demonstrated to be considerably better than prior literature. Moreover, the present HLTS was shown to be theoretically limited to 85.6 kW/m2, thus demonstrating that this type of system can meet the needs of intermediate temperature PTC receivers.
KW - Experimental analysis
KW - Horizontal two-phase loop thermosiphon
KW - Intermediate temperature
KW - Thermal performance
KW - Unidirectional flow
UR - http://www.scopus.com/inward/record.url?scp=85019363584&partnerID=8YFLogxK
U2 - 10.1016/j.energy.2017.05.007
DO - 10.1016/j.energy.2017.05.007
M3 - 文章
AN - SCOPUS:85019363584
SN - 0360-5442
VL - 132
SP - 289
EP - 304
JO - Energy
JF - Energy
ER -