This paper investigates a stowing strategy of a heliostat field based on wind speed and direction, in terms of the potential benefit of additional energy collection through the partial stowing of heliostats within an azimuth angle range with reduced operating wind loads. Correlations of one-minute wind speed and DNI at a heliostat field site with the operating wind loads, based on the azimuth-elevation tracking angles of individual heliostats, were used to assess the increased operating time and collected thermal energy by the field. The results show that more than 23% of heliostats in the sector of the field with operating wind loads that are smaller than 50% of the stow loads can continue to operate during a high-wind period (e.g. 10 m/s). Adopting a stow strategy based on wind direction can increase the annual operating time of the heliostat field by 6% with increasing stow design wind speed from 6 m/s to 12 m/s. Furthermore, the stowing strategy based on wind direction to allow heliostats to continue to operate at wind speeds exceeding 10 m/s can achieve an additional 280 MWh of thermal energy collected by the heliostat field operation during time periods that would conventionally stow the entire field with 24 GWh of annual thermal energy captured.
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12 May 2022
SOLARPACES 2020: 26th International Conference on Concentrating Solar Power and Chemical Energy Systems
28 September–2 October 2020
Freiburg, Germany
Research Article|
May 12 2022
Stowing strategy for a heliostat field based on wind speed and direction Free
Matthew Emes;
Matthew Emes
a)
1
Centre for Energy Technology, School of Mechanical Engineering, The University of Adelaide
, Adelaide, SA 5005, Australia
a)Corresponding author: [email protected]
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Azadeh Jafari;
Azadeh Jafari
b)
1
Centre for Energy Technology, School of Mechanical Engineering, The University of Adelaide
, Adelaide, SA 5005, Australia
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Mike Collins;
Mike Collins
c)
2
CSIRO Energy
, 10 Murray Dwyer Circuit, Mayfield West, NSW 2304, Australia
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Stefan Wilbert;
Stefan Wilbert
d)
3
German Aerospace Center (DLR), Institute of Solar Research
, Paseo de Almería 73, 04001 Almería, Spain
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Luis Zarzalejo;
Luis Zarzalejo
e)
4
Centro de Investigaciones Energéticas, Medioambientales y Tecnológicas (CIEMAT), División de Energías Renovables
, Avda. Complutense 40, 28040 Madrid, Spain
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Silvan Siegrist;
Silvan Siegrist
f)
5
Lumoview Building Analytics GmbH
, Im Mediapark 5, 50670 Köln, Germany
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Maziar Arjomandi
Maziar Arjomandi
g)
1
Centre for Energy Technology, School of Mechanical Engineering, The University of Adelaide
, Adelaide, SA 5005, Australia
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Matthew Emes
1,a)
Azadeh Jafari
1,b)
Mike Collins
2,c)
Stefan Wilbert
3,d)
Luis Zarzalejo
4,e)
Silvan Siegrist
5,f)
Maziar Arjomandi
1,g)
1
Centre for Energy Technology, School of Mechanical Engineering, The University of Adelaide
, Adelaide, SA 5005, Australia
2
CSIRO Energy
, 10 Murray Dwyer Circuit, Mayfield West, NSW 2304, Australia
3
German Aerospace Center (DLR), Institute of Solar Research
, Paseo de Almería 73, 04001 Almería, Spain
4
Centro de Investigaciones Energéticas, Medioambientales y Tecnológicas (CIEMAT), División de Energías Renovables
, Avda. Complutense 40, 28040 Madrid, Spain
5
Lumoview Building Analytics GmbH
, Im Mediapark 5, 50670 Köln, Germany
AIP Conf. Proc. 2445, 120011 (2022)
Citation
Matthew Emes, Azadeh Jafari, Mike Collins, Stefan Wilbert, Luis Zarzalejo, Silvan Siegrist, Maziar Arjomandi; Stowing strategy for a heliostat field based on wind speed and direction. AIP Conf. Proc. 12 May 2022; 2445 (1): 120011. https://doi.org/10.1063/5.0085677
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