The Compressor Sample Clauses

The Compressor. The compressor component consists of an electric motor, which drives the air compressor. The electric motor driving the compressor will use the synchronous motor model created in chapter 3, with the power being provided by a voltage (Vm) and a current (Im), which will produce power (Pm) on the motor’s output shaft related to the torque (Tm) and speed of rotation (ωm) (see chapter 3.3.1.2). Where, η is the efficiency of the motor. For the output shaft of the motor drives the compress pulling in air at atmospheric pressure (pair_in) and flow rate (ṁair_in). The output of the compressor is a desired pressure (pT_in), which feeds into the storage tank at given a flow rate (ṁT_in = vol. flow rate x air density at temperature, T). In addition, heat is added to the heat is added to the air as it passes through the compressor, therefore, the enthalpy of the air may need to be considered depending on the CAES system installation, i.e. adiabatic, isothermal, isobaric, etc. If the compressor is considered from first principles, then; ] Where; is the inlet air temperature to the compressor is the specific heat capacity at constant pressure is the specific heat capacity at constant volume is the compressor efficiency ] Figure 60 shows a representation of the GES modelling block for the compressor side of the CAES system. Table 38 gives the initial input and output parameters needed for the compressor model of the CAES system. Type Version INOMAN.1 Help Compressed air Created Name Gates AIR_Compresse air storage 1 Fuel type SWBS 0 0 TNO 5-11-2013 Parameters 0 gate # Index Power [In,Out] effort cal unit flow cal unit parameter # name value unit 0 0 in Voltage func [V] Current [A] Power P_nom kW 1 1 out Pressure func [Pa] air flow [m3/s] Inlet pressure p_inlet 1 Bar Inlet temp. T_inlet. 25 K Compressor eff. Eff_comp % Motor eff. Eff_motor 96 % Spec. heat cap. @ press. C_p1 J/kg.K Spec. heat cap. @ volume C_v1 J/kg.K
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Related to The Compressor

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