Refrigeration heating system semi-physical simulation experimental method
A semi-physical simulation and test method technology, applied in the field of improvement of refrigeration and heating system simulation test methods, can solve problems such as large energy consumption, large compensation, long production cycle of system accessories, etc.
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Embodiment 1
[0082] figure 1 The working principle of the refrigeration component is: the high-temperature and high-pressure gas drawn from the engine is cooled by the ram air in the primary heat exchanger, then enters the compressor to be compressed to a higher pressure and temperature, and then enters the secondary heat exchanger for cooling. When the supply air passes through the regenerator, it is cooled by the cold air from the water separator. In the condenser, the water in the air condenses from the vapor state to a liquid state under high pressure. After passing through the water separator, the air containing a small amount of condensed water droplets passes through the cold end of the regenerator to cool the hot side air supply and prevent the turbine from freezing. The supply air cools down through the expansion of the turbine. The shaft power generated during expansion drives the compressor and the fan to rotate. The heat energy is converted into mechanical energy, so that the ex...
Embodiment 2
[0127] The cooling and heating components, excitation simulation platform, and cooling and heating controller in Embodiment 2 are the same as those in Embodiment 1.
[0128] experiment procedure:
[0129] First, as shown in the figure above, connect the above-mentioned cooling and heating controller, a set of real cooling components and the excitation simulation platform through wires;
[0130] The refrigeration and heating controller is connected to the temperature control valve of the real refrigeration component and the outlet temperature sensor of the refrigeration component through a wire. The refrigeration and heating controller controls the temperature control valve through the 28V / PWM output interface; at the same time, the refrigeration and heating controller and the excitation simulation platform pass through the wires Connection, the cooling and heating controller receives the simulation signal that stimulates the simulation platform through the PT1000 resistance three-wir...
Embodiment 3
[0144] The cooling and heating assembly in Example 3 adds a set of trim system, a mixing chamber, cockpit pipeline temperature sensor (T2), cockpit pipeline flow sensor (F3), and cargo hold on the basis of the cooling and heating assembly in Example 1. Pipeline temperature sensor (T1), cargo tank pipeline flow sensor (F1). The trim system is composed of cockpit trim valve, cargo hold trim valve, cockpit trim flow sensor (F3), cargo hold trim flow sensor (F2) and some ducts.
[0145] The excitation simulation platform and the cooling and heating controller in Embodiment 2 are the same as those in Embodiment 1.
[0146] experiment procedure:
[0147] First, as shown in the figure above, connect the above-mentioned cooling and heating controller, a set of real cooling components and the excitation simulation platform through wires;
[0148] The cooling and heating controller is connected to the temperature control valve of the real cooling component, the outlet temperature sensor of the...
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