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Modelling and Simulation of Solar-Biomass Hybrid Trigeneration using ORC-VCC

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Modelling and Simulation of Solar-Biomass Hybrid Trigeneration using ORC-VCC ( modelling-and-simulation-solar-biomass-hybrid-trigeneration- )

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International Journal of Mechanical Engineering and July - August- 2014 Computer Applications, Vol 2, Issue 4 ISSN 2320-6349 The cover and plate design needs the values of the optical and thermal properties of the covers and the absorber plate. The collector can have up to two covers Figure 3 Cover and Plate of the solar flat plate collector Figure 4 The Cover and plate design parameters To calculate the heat loss coefficient, it is necessary for the program to be provided with information about the edge and back insulation. This information is provided through as - Thickness and conductivity of back Insulation Thickness and conductivity of edge Insulation. tube and absorber plate. If the thermal conductance between them is high, its value should be larger than 400 W/mK. Input variables in this are - Tube - Number of Tubes Figure 5 The Edge and back Insulation parameters - Inner & outer diameter - Fluid - Material - Percent Composition (for ethylene glycol/water and Propylene glycol/water) - Volumetric flow rate - Inlet Pressure - Plate-Tube Bond Conductivity Figure 6 Tube and fluid input parameters ORGANIC RANKINE CYCLE MODEL: The thermodynamic modelling of the ORC presented in this section is for the system shown in Figure 5. The analysis is carried out by applying the governing equations to the control volumes enclosing each component of the system. For each component, mass, energy, and exergy balance equations are presented. The analysis starts with The working fluid is selected among water, ethylene glycol/water and propylene glycol/water. The bond conductivity represents the contact resistance between the www.ijmca.org Page 113

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