Thermal efficiency boundary analysis of an internal combustion Rankine cycle engine. (1st January 2016)
- Record Type:
- Journal Article
- Title:
- Thermal efficiency boundary analysis of an internal combustion Rankine cycle engine. (1st January 2016)
- Main Title:
- Thermal efficiency boundary analysis of an internal combustion Rankine cycle engine
- Authors:
- Wu, Zhijun
Fu, Lezhong
Gao, Yang
Yu, Xiao
Deng, Jun
Li, Liguang - Abstract:
- Abstract: This paper discusses a novel oxy-fuel combustion method named ICRC (internal combustion Rankine cycle) used in reciprocating engines. Pure oxygen replaces air as oxidant for NOx emission avoidance and CO2 recovery. Water is heated up through heat exchanger by exhaust gas, and then injected into the cylinder near top dead center to control the combustion temperature, meanwhile increases the mass of working fluid and therefore enhances the thermo efficiency of the cycle. An ideal engine thermodynamic model combined with a heat exchange model was developed to investigate the thermal efficiency upper boundary of this cycle. The results indicate that the added water increases the thermal efficiency significantly considering the heat exchange between water and exhaust gas, and thermal efficiency increase from 33% (without water injection) to 56% when engine speed is 2000 rpm and engine compression ratio is 9.2. Lower engine speed, intake pressure and higher compression ratio are propitious to higher thermal efficiency. The best thermal efficiency of the whole ICRC system can reach to 58% when engine compression ratio is 14. Thus this concept has the potential for high thermal efficiency and low emission. Highlights: An oxy-fuel combustion cycle integrated with WHR and WI is presented for IC engine. Water is used as exchange recovery medium and working gas in a reciprocating engine. A heat exchange model developed and integrated with an engine model. The thermalAbstract: This paper discusses a novel oxy-fuel combustion method named ICRC (internal combustion Rankine cycle) used in reciprocating engines. Pure oxygen replaces air as oxidant for NOx emission avoidance and CO2 recovery. Water is heated up through heat exchanger by exhaust gas, and then injected into the cylinder near top dead center to control the combustion temperature, meanwhile increases the mass of working fluid and therefore enhances the thermo efficiency of the cycle. An ideal engine thermodynamic model combined with a heat exchange model was developed to investigate the thermal efficiency upper boundary of this cycle. The results indicate that the added water increases the thermal efficiency significantly considering the heat exchange between water and exhaust gas, and thermal efficiency increase from 33% (without water injection) to 56% when engine speed is 2000 rpm and engine compression ratio is 9.2. Lower engine speed, intake pressure and higher compression ratio are propitious to higher thermal efficiency. The best thermal efficiency of the whole ICRC system can reach to 58% when engine compression ratio is 14. Thus this concept has the potential for high thermal efficiency and low emission. Highlights: An oxy-fuel combustion cycle integrated with WHR and WI is presented for IC engine. Water is used as exchange recovery medium and working gas in a reciprocating engine. A heat exchange model developed and integrated with an engine model. The thermal efficiency boundary of ICRC engine is determined. The best thermal efficiency of the whole ICRC system can reach to 58%. … (more)
- Is Part Of:
- Energy. Volume 94(2016)
- Journal:
- Energy
- Issue:
- Volume 94(2016)
- Issue Display:
- Volume 94, Issue 2016 (2016)
- Year:
- 2016
- Volume:
- 94
- Issue:
- 2016
- Issue Sort Value:
- 2016-0094-2016-0000
- Page Start:
- 38
- Page End:
- 49
- Publication Date:
- 2016-01-01
- Subjects:
- Oxy-fuel combustion -- Water injection -- Waste heat recovery -- IC engine -- Thermal efficiency boundary
Power resources -- Periodicals
Power (Mechanics) -- Periodicals
Energy consumption -- Periodicals
333.7905 - Journal URLs:
- http://www.elsevier.com/journals ↗
- DOI:
- 10.1016/j.energy.2015.10.099 ↗
- Languages:
- English
- ISSNs:
- 0360-5442
- Deposit Type:
- Legaldeposit
- View Content:
- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - 3747.445000
British Library DSC - BLDSS-3PM
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