Introduction to thermal energy storage TES systems

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Introduction to thermal energy storage TES systems ( introduction-thermal-energy-storage-tes-systems )

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18 Advances in Thermal Energy Storage Systems Discharging (Day) TCS Heat exchanger TCS 35°C 25°C Building District heat Zeolite 180°C Condensate Humidifier Charging (Night) District heat Zeolite Heat exchanger 35°C 25°C Building Steam Figure 1.14 Charging and discharging mode for heating [14]. and above) and the heat of condensation QCond is supplied to the heating system of the school. The storage system is discharged in times of peak power demand. At first the air is heated up to 25–30°C and saturated with water vapour by a humidifier. The energy for this process is provided by the low temperature return flow of the district heating system (heat of evaporation QEvap). The steam line of the district heating system is not used. The humidified air is blown into the tank containing desorbed zeolite. The air temperature is raised to 100°C (heat of adsorption QAds). The thermal energy is transferred to the heating system of the school (flow temperature 65°C) by heat exchanger. 1.3.4.2 Cooling In order to use the zeolite storage system as a desiccant cooling system, two additional components have to be integrated. Figure 1.15 shows the complete desiccant cooling

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