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Net workdone in brayton cycle
Net workdone in brayton cycle





net workdone in brayton cycle

However, due to fluctuations in the operation of the primary loop of the system with nuclear energy, parameters such as the power of the heat source and the mass flow of the working medium in the system will change, which will affect the dynamic performance and operation of the SCO 2 Brayton cycle system. The supercritical carbon dioxide (SCO 2) Brayton cycle has been regarded as the main development direction of future nuclear power generation by more and more scholars, due to its high environmental efficiency and high thermoelectric conversion rate. 2Key Laboratory of Thermo-Fluid Science and Engineering of Ministry of Education, School of Energy and Power Engineering, Xi’an Jiaotong University, Xi’an, China.

net workdone in brayton cycle

  • 1Key Laboratory of Complex Energy Conversion and Utilization, School of Energy and Power Engineering, Dalian University of Technology, Dalian, China.
  • Thank you.Qinghui Zhu 1, Ruiyan Han 1, Siyuan Yang 2, Bo Zhang 1* and Zhuqiang Yang 1 So this is the required answer to the question. Our answer to the question is option b, so our answer is here: option b, which is 95 kilo, joule per k g. So if we round off it will get 95 kilo joule per k g. Joule per k g now, let us see which option is correct, so our option b is correct, which is 95 kilo joule per k g. Actually, so it will be equals to 212.5 minus 117.647, so it will be 94.853 kilo. We know that the work done net actual is equal to work done by the turbine actual minus the work done by the compressor. So from here, work done by the turbine actual will come out equal to 212.5 kilo, joule per k g. So it will be equals to 0.85 is equal to work done by the turbine actual over 250 point. Tropic efficiency is equal to work done by the term when actual over the work done by the turbine ideal. Now the tropic efficiency of the turbine is also. Actual is equal to 117.647 kilo jule per kg. So from here we get work done by the compressor. Actually so here it will be equal to 0.85 is equal to 100 over work done actual. Joules per kg, the isentropic efficiency is 1.85, so centropic efficiency of the compressor is equal to work done by the compressor ideal over the work done by the compressor.

    net workdone in brayton cycle

    Joule per kg and work done by the compressor ideal is equal to 100 kilo. We will basically get work done by the turbine. So it is our ideal and it is equal to 0.4 now solving this first equation and this second equation so from here we write from 1 and 2. W r is equal to basically w c over w t work done by the compressor over the turbine. W r of ideal is given to us as 115 point so b. So we know that w net, which is the net work done, is equal to work done by the turbine minus the work done by the compressor. So now here we have to find a net work output of the cycle. W r is equal to 0.4, and here we are given that the efficiency t is equal to the efficiency of c is equal to 0.85. W net is done, is equal to 150 kilo, joule per k, g and backwork ratio, which is represented by b. Hello students in this question, we are given an ideal batrons cycle where the net work done.







    Net workdone in brayton cycle