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Two alternative cooling designs are tested for the thermal power plant, i.e. once-through and wet tower cooling.
Finally, the numerical integration method is used to solve the matrix equation to yield the seismic response of the wet tower.
To test the result of this simulation, a pilot hybrid tower containing a wet tower and 12 compact air cooled heat exchangers was designed and constructed.
Also, it appears that a CCS-equipped power plant with a hybrid dry wet cooling system is comparable to that of the base case plant that uses a wet tower system but without carbon capture.
Next, the partial differential equation of motion for the forced vibration of the tower, contacting water (or "wet" tower), subjected to support excitation is transformed into a matrix equation by using the last natural frequencies and normal modes shape of the freely vibrating dry tower.
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Wet towers are usually designed to operate in hot and dry weather conditions with narrow range of wet bulb temperature, but many cooling towers are required to operate in weather condition with large variation of wet bulb temperature which strongly affects the thermal performance of the towers.
Using the information presented in this paper, it will be possible to incorporate dry and wet cooling tower design, and simulation into a procedure to evaluate and optimize hybrid cooling tower performance.
Model of heat and mass transfer in wet cooling tower fills is presented.
A closed wet cooling tower with novel design was proposed and numerically investigated.
A model for heat and mass transfer in a natural-draft wet cooling tower was established.
Wet cooling tower is the largest consumer of water in the power plants.
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