Process heat represents a major share of final energy consumption in the industrial sector and can partly be provided by solar thermal systems. To date, there has been little experience with solar heat plants for industrial processes operating at medium temperature levels (100–250 °C). This paper focuses on the analysis of reduced solar gains by heating-up processes (capacitive thermal losses) in a parabolic trough collector field with an aperture area of 627 m2 providing solar heat for a Swiss dairy at 120 °C. Heating-up thermal masses is experimentally quantified by a new method using existing temperature sensors. The unused solar thermal gains of heating-up periods amount to 18% of possible useful solar gains in 2014. In winter months, this share can reach 50%. Preserving the hot fluid content in an ideally insulated storage in the evening could avoid heating-up in the morning and reduce capacitive thermal losses by 38%. With properly installed insulation thermal losses of the piping system during operation are theoretically proven to be below 3% of useful solar gains. The analyses are based on the evaluation of highly time-resolved measurements of one year.
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August 2019
Research-Article
Diminution of Useful Solar Gains by Capacitive Thermal Losses and Thermal Piping Losses in a Solar Process Heat Plant With Parabolic Trough Collectors in Switzerland
Jana Möllenkamp,
Jana Möllenkamp
SPF Institute for Solar Technology,
HSR University of Applied Sciences,
Rapperswil 8640, Switzerland
e-mail: jana.moellenkamp@spf.ch
HSR University of Applied Sciences,
Rapperswil 8640, Switzerland
e-mail: jana.moellenkamp@spf.ch
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Mercedes H. Rittmann-Frank,
Mercedes H. Rittmann-Frank
SPF Institute for Solar Technology,
HSR University of Applied Sciences,
Rapperswil 8640, Switzerland
HSR University of Applied Sciences,
Rapperswil 8640, Switzerland
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Andreas Häberle,
Andreas Häberle
SPF Institute for Solar Technology,
HSR University of Applied Sciences,
Rapperswil 8640, Switzerland
HSR University of Applied Sciences,
Rapperswil 8640, Switzerland
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Thomas Beikircher,
Thomas Beikircher
ZAE Bayern: Bavarian Center for
Applied Energy Research,
Garching 85748, Germany
e-mail: thomas.beikircher@zae-bayern.de
Applied Energy Research,
Garching 85748, Germany
e-mail: thomas.beikircher@zae-bayern.de
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Wolfgang Schölkopf
Wolfgang Schölkopf
ZAE Bayern: Bavarian Center for
Applied Energy Research,
Garching 85748, Germany
Applied Energy Research,
Garching 85748, Germany
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Jana Möllenkamp
SPF Institute for Solar Technology,
HSR University of Applied Sciences,
Rapperswil 8640, Switzerland
e-mail: jana.moellenkamp@spf.ch
HSR University of Applied Sciences,
Rapperswil 8640, Switzerland
e-mail: jana.moellenkamp@spf.ch
Mercedes H. Rittmann-Frank
SPF Institute for Solar Technology,
HSR University of Applied Sciences,
Rapperswil 8640, Switzerland
HSR University of Applied Sciences,
Rapperswil 8640, Switzerland
Andreas Häberle
SPF Institute for Solar Technology,
HSR University of Applied Sciences,
Rapperswil 8640, Switzerland
HSR University of Applied Sciences,
Rapperswil 8640, Switzerland
Thomas Beikircher
ZAE Bayern: Bavarian Center for
Applied Energy Research,
Garching 85748, Germany
e-mail: thomas.beikircher@zae-bayern.de
Applied Energy Research,
Garching 85748, Germany
e-mail: thomas.beikircher@zae-bayern.de
Wolfgang Schölkopf
ZAE Bayern: Bavarian Center for
Applied Energy Research,
Garching 85748, Germany
Applied Energy Research,
Garching 85748, Germany
1Corresponding author.
Contributed by the Solar Energy Division of ASME for publication in the JOURNAL OF SOLAR ENERGY ENGINEERING: INCLUDING WIND ENERGY AND BUILDING ENERGY CONSERVATION. Manuscript received June 28, 2018; final manuscript received November 29, 2018; published online February 19, 2019. Assoc. Editor: Marc Röger.
J. Sol. Energy Eng. Aug 2019, 141(4): 041013 (7 pages)
Published Online: February 19, 2019
Article history
Received:
June 28, 2018
Revised:
November 29, 2018
Citation
Möllenkamp, J., Rittmann-Frank, M. H., Häberle, A., Beikircher, T., and Schölkopf, W. (February 19, 2019). "Diminution of Useful Solar Gains by Capacitive Thermal Losses and Thermal Piping Losses in a Solar Process Heat Plant With Parabolic Trough Collectors in Switzerland." ASME. J. Sol. Energy Eng. August 2019; 141(4): 041013. https://doi.org/10.1115/1.4042456
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