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2021 | OriginalPaper | Buchkapitel

Experimental Investigation of a Sensible Thermal Energy Storage System

verfasst von : Vishwa Deepak Kumar, Yudhisther Surolia, Sudipto Mukhopadhyay, Laltu Chandra

Erschienen in: New Research Directions in Solar Energy Technologies

Verlag: Springer Singapore

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Abstract

Solar energy is a promising renewable source to support the growing energy demand. Sensible heat thermal energy storage (SHTES) is widely used, in practice, to supply the stored energy, in off-solar hours. These systems can be built using locally available and environment friendly materials. However, a good design as well as proper choice of materials is essential to construct an efficient and economical system. In this work, the secondary SHTES system of in-house solar air tower simulator (SATS) is investigated. The system uses hot air as heat transfer fluid and magnesium silicate pebbles as the storage material. The function of the secondary TES here is to store the waste energy from the hot air after it exits the solar convective furnace (SCF). The charging and discharging of the TES system are studied experimentally. It is observed that the secondary TES performance is satisfactory and serves as a proof of concept for future development.

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Literatur
Zurück zum Zitat Ávila Marín AL (2011) Volumetric receivers in solar thermal power plants with central receiver system technology: a review. Solar Energy 85(5):891–910CrossRef Ávila Marín AL (2011) Volumetric receivers in solar thermal power plants with central receiver system technology: a review. Solar Energy 85(5):891–910CrossRef
Zurück zum Zitat Blanco M, Miller S (2017) Introduction to concentrating solar thermal (CST) technologies. In: Blanco MJ, Santigosa LR (eds) Advances in concentrating solar thermal research and technology. Woodhead Publishing Series in, Energy. Woodhead Publishing, pp 3–25 Blanco M, Miller S (2017) Introduction to concentrating solar thermal (CST) technologies. In: Blanco MJ, Santigosa LR (eds) Advances in concentrating solar thermal research and technology. Woodhead Publishing Series in, Energy. Woodhead Publishing, pp 3–25
Zurück zum Zitat Fath HE (1998) Technical assessment of solar thermal energy storage technologies. Renew Energy 14(1):35–40 (6th Arab International Solar Energy Conference: Bringing Solar Energy into the Daylight) Fath HE (1998) Technical assessment of solar thermal energy storage technologies. Renew Energy 14(1):35–40 (6th Arab International Solar Energy Conference: Bringing Solar Energy into the Daylight)
Zurück zum Zitat Häberle A (2012) Concentrating solar technologies for industrial process heat and cooling. In: Lovegrove K, Stein W (eds) Concentrating solar power technology. Woodhead Publishing Series in, Energy. Woodhead Publishing, pp 602–619 Häberle A (2012) Concentrating solar technologies for industrial process heat and cooling. In: Lovegrove K, Stein W (eds) Concentrating solar power technology. Woodhead Publishing Series in, Energy. Woodhead Publishing, pp 602–619
Zurück zum Zitat Hänchen M, Brückner S, Steinfeld A (2011) High-temperature thermal storage using a packed bed of rocks-heat transfer analysis and experimental validation. Appl Thermal Eng 31(10):1798–1806CrossRef Hänchen M, Brückner S, Steinfeld A (2011) High-temperature thermal storage using a packed bed of rocks-heat transfer analysis and experimental validation. Appl Thermal Eng 31(10):1798–1806CrossRef
Zurück zum Zitat Hoffschmidt B, Te’llez FM, Valverde A, Ferna’ndez J, Ferna’ndez V (2003) Performance evaluation of the 200-kWth HiTRec-II open volumetric air receiver. J Solar Energy Eng 125(1)01:87–94 Hoffschmidt B, Te’llez FM, Valverde A, Ferna’ndez J, Ferna’ndez V (2003) Performance evaluation of the 200-kWth HiTRec-II open volumetric air receiver. J Solar Energy Eng 125(1)01:87–94
Zurück zum Zitat Patidar D, Pardeshi R, Chandra L, Shekhar R (2017) Solar convective furnace for heat treatment of aluminium. Lecture Notes in Mechanical Engineering, pp 1531–1541 Patidar D, Pardeshi R, Chandra L, Shekhar R (2017) Solar convective furnace for heat treatment of aluminium. Lecture Notes in Mechanical Engineering, pp 1531–1541
Zurück zum Zitat Patidar D, Tiwari S, Sharma P, Chandra L, Shekhar R (2015) Open volumetric air receiver based solar convective aluminum heat treatment furnace system. In: Energy procedia, vol 69, pp 506–517. International Conference on Concentrating Solar Power and Chemical Energy Systems, SolarPACES 2014 Patidar D, Tiwari S, Sharma P, Chandra L, Shekhar R (2015) Open volumetric air receiver based solar convective aluminum heat treatment furnace system. In: Energy procedia, vol 69, pp 506–517. International Conference on Concentrating Solar Power and Chemical Energy Systems, SolarPACES 2014
Zurück zum Zitat Pielichowska K, Pielichowski K (2014) Phase change materials for thermal energy storage. Progress Mater Sci 65:67–123CrossRef Pielichowska K, Pielichowski K (2014) Phase change materials for thermal energy storage. Progress Mater Sci 65:67–123CrossRef
Zurück zum Zitat Pitz-Paal R, Hoffschmidt B, Böhmer M, Becker M (1997) Experimental and numerical evaluation of the performance and flow stability of different types of open volumetric absorbers under non-homogeneous irradiation. Solar Energy 60(3):135–150CrossRef Pitz-Paal R, Hoffschmidt B, Böhmer M, Becker M (1997) Experimental and numerical evaluation of the performance and flow stability of different types of open volumetric absorbers under non-homogeneous irradiation. Solar Energy 60(3):135–150CrossRef
Zurück zum Zitat Powell KM, Edgar TF (2012) Modeling and control of a solar thermal power plant with thermal energy storage. Chem Eng Sci 71:138–145 Powell KM, Edgar TF (2012) Modeling and control of a solar thermal power plant with thermal energy storage. Chem Eng Sci 71:138–145
Zurück zum Zitat Sarbu I, Sebarchievici C (2018) A comprehensive review of thermal energy storage. Sustainability 10(1):191CrossRef Sarbu I, Sebarchievici C (2018) A comprehensive review of thermal energy storage. Sustainability 10(1):191CrossRef
Zurück zum Zitat Sharma P, Sarma R, Chandra L, Shekhar R, Ghoshdastidar P (2015) Solar tower based aluminum heat treatment system: part i. Design and evaluation of an open volumetric air receiver. Solar Energy 111:135–150CrossRef Sharma P, Sarma R, Chandra L, Shekhar R, Ghoshdastidar P (2015) Solar tower based aluminum heat treatment system: part i. Design and evaluation of an open volumetric air receiver. Solar Energy 111:135–150CrossRef
Zurück zum Zitat Sharma P, Sarma R, Chandra L, Shekhar R, Ghoshdastidar P (2014) On the design and evaluation of open volumetric air receiver for process heat applications. In: Energy Procedia, vol 57, pp 2994–3003. 2013 ISES Solar World Congress Sharma P, Sarma R, Chandra L, Shekhar R, Ghoshdastidar P (2014) On the design and evaluation of open volumetric air receiver for process heat applications. In: Energy Procedia, vol 57, pp 2994–3003. 2013 ISES Solar World Congress
Zurück zum Zitat Tian Y, Zhao C-Y (2013) A review of solar collectors and thermal energy storage in solar thermal applications. Appl Energy 104:538–553CrossRef Tian Y, Zhao C-Y (2013) A review of solar collectors and thermal energy storage in solar thermal applications. Appl Energy 104:538–553CrossRef
Metadaten
Titel
Experimental Investigation of a Sensible Thermal Energy Storage System
verfasst von
Vishwa Deepak Kumar
Yudhisther Surolia
Sudipto Mukhopadhyay
Laltu Chandra
Copyright-Jahr
2021
Verlag
Springer Singapore
DOI
https://doi.org/10.1007/978-981-16-0594-9_13