scholarly journals Thermodynamic and feasibility analysis of air conditioning waste heat recovery via power generation cycles

2020 ◽  
Vol 6 ◽  
pp. 3472-3490
Author(s):  
Zhanying Zheng ◽  
Jingyu Cao
2007 ◽  
Vol 2 (3) ◽  
pp. 86-95
Author(s):  
R. Sudhakaran ◽  
◽  
V. Sella Durai ◽  
T. Kannan ◽  
P.S. Sivasakthievel ◽  
...  

Author(s):  
Tong Xing ◽  
Qingfeng Song ◽  
Pengfei Qiu ◽  
Qihao Zhang ◽  
Ming Gu ◽  
...  

GeTe-based materials have a great potential to be used in thermoelectric generators for waste heat recovery due to their excellent thermoelectric performance, but their module research is greatly lagging behind...


2020 ◽  
Vol 17 (2) ◽  
pp. 81
Author(s):  
Liliana Liliana

Waste Heat Recovery Power Generation (WHRPG) adalah sebuah sistem mengkonservasi energi dan menunjang pembangunan bersih atau Clean Development Mechanism (CDM) yang merupakan implementasi dari Kyoto Protocol. Sistem ini terbukti dapat  menurunkan emisi CO2 sebesar 47.000 ton per tahun. WHRPG menggunakan generator sinkron dengan kapasitas 8,5 MW dilengkapi dengan sistem eksitasi tanpa sikat.  Pengoperasian WHRPG yang kontinyu harus didukung dengan pengoperasian generator dengan pengamanan yang optimal. Generator harus terus dilindungi dari gangguan-gangguan yang mungkin terjadi. Pengamanan Generator telah dilengkapi dengan Generator Protection Type M-3425 yang terdiri atas beberapa jenis pengamanan di dalamnya. Penelitian ini bertujuan untuk menganalisis kinerja proteksi pada generator khususnya terhadap gangguan tegangan lebih dan frekuensi rendah berupa kenaikan tegangan mencapai 45% dan gangguan penurunan frekuensi mencapai 6 % . Penelitian ini mengidentifikasi ketepatan kinerja relay Over Current Relay dan  under frequency Relay dalam melaksanakan pengamanan gangguan tersebut.  Hasil pemantauan dan analisis dinyatakan bahwa kedua  relay dapat dengan cepat membaca gangguan yang terjadi, selanjutnya memberi isyarat untuk mengaktifkan lock out relay, alarm dan lampu indikator sehingga gangguanpun dengan segera dapat diatasi sehingga potensi kerusakan yang bisa terjadi  pada generator bisa diminimalisir.


Energies ◽  
2019 ◽  
Vol 12 (7) ◽  
pp. 1265 ◽  
Author(s):  
Gequn Shu ◽  
Chen Hu ◽  
Hua Tian ◽  
Xiaoya Li ◽  
Zhigang Yu ◽  
...  

About 2/3 of the combustion energy of internal combustion engine (ICE) is lost through the exhaust and cooling systems during its operation. Besides, automobile accessories like the air conditioning system and the radiator fan will bring additional power consumption. To improve the ICE efficiency, this paper designs some coupled thermal management systems with different structures which include the air conditioning subsystem, the waste heat recovery subsystem, engine and coolant subsystem. CO2 is chosen as the working fluid for both the air conditioning subsystem and the waste heat recovery subsystem. After conducting experimental studies and a performance analysis for the subsystems, the coupled thermal management system is evaluated at different environmental temperatures and engine working conditions to choose the best structure. The optimal pump speed increases with the increase of environmental temperature and the decrease of engine load. The optimal coolant utilization rate decreases with the increase of engine load and environmental temperature, and the value is between 38% and 52%. While considering the effect of environmental temperature and road conditions of real driving and the energy consumption of all accessories of the thermal management system, the optimal thermal management system provides a net power of 4.2 kW, improving the ICE fuel economy by 1.2%.


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