Design, Fabrication and Evaluation of Gamma-Type Stirling Engine to Produce Electricity from Biomass for the Micro-CHP System

With consideration of the biomass energy potential, a gamma type Stirling engine with 220cc swept volume and 580cc total volume was designed, optimized and manufactured. The engine was tested with helium. Working characteristics of the engine were obtained within the range of heat source temperature...

Full description

Bibliographic Details
Main Authors: Hojjat, Damirchi, G., Najafi, Siamak, Alizadehnia, B., Ghobadian, Talal, Yusaf, R., Mamat
Format: Article
Language:English
Published: Elsevier Ltd 2015
Subjects:
Online Access:http://umpir.ump.edu.my/id/eprint/11067/1/Design%2C%20Fabrication%20and%20Evaluation%20of%20Gamma-Type%20Stirling%20Engine%20to%20Produce%20Electricity%20from%20Biomass%20for%20the%20Micro-CHP%20System.pdf
_version_ 1796990917557616640
author Hojjat, Damirchi
G., Najafi
Siamak, Alizadehnia
B., Ghobadian
Talal, Yusaf
R., Mamat
author_facet Hojjat, Damirchi
G., Najafi
Siamak, Alizadehnia
B., Ghobadian
Talal, Yusaf
R., Mamat
author_sort Hojjat, Damirchi
collection UMP
description With consideration of the biomass energy potential, a gamma type Stirling engine with 220cc swept volume and 580cc total volume was designed, optimized and manufactured. The engine was tested with helium. Working characteristics of the engine were obtained within the range of heat source temperature 370- 410˚C and charge pressure 10 bar for biomass resources and heat source temperature 540- 560 ˚C and range of charge pressure 1-12 bar with 1 bar increments at each stage for gases. By using of thermodynamic and heat transfer design methods, the key parameters of the designed Stirling engine like required surfaces for heat transfer were calculated (hot side 307 and the cold side 243 squares of centimeters). For analysis of fluid flow, two-dimensional flow analysis method was performed by the software CFD methods. The principles of thermodynamics as well as Schmidt theory were adapted to use for modeling the engine and then pressure - volume diagrams of the thermodynamic and Schmidt analysis were compared. During the test, the temperature is monitored by thermocouples and the pressure of the working fluid helium is monitored by pressure sensors. Indicated power, friction power and brake power were measured and maximum brake power output was obtained with helium at 550˚C heat source temperature and 10 bar charge pressure at 700 rpm as 96.7 W. Electrical energy produced from biomass sources.Sugarcane bagasse, wood, wheat straw, poplar wood and sawdust as fuel system were selected. Most power be obtained from the sawdust (46 watt) and pruning of trees for wood for low power (21 watts), respectively. Minimum ignition time of the Sawdust (4 min) and the most time flammable wood from pruned trees (10 min) was measured. At maximum power, the internal thermal efficiency of the engine was measured as 16%. The test results confirm the fact that Stirling engines driven by temperature of biomass gases are able to achieve a valuable output power. Results of the present work encouraged initiating design of a single cylinder, gamma type Stirling engine of 1 kWe capacity for rural electrification.
first_indexed 2024-03-06T11:58:37Z
format Article
id UMPir11067
institution Universiti Malaysia Pahang
language English
last_indexed 2024-03-06T11:58:37Z
publishDate 2015
publisher Elsevier Ltd
record_format dspace
spelling UMPir110672018-01-30T02:19:58Z http://umpir.ump.edu.my/id/eprint/11067/ Design, Fabrication and Evaluation of Gamma-Type Stirling Engine to Produce Electricity from Biomass for the Micro-CHP System Hojjat, Damirchi G., Najafi Siamak, Alizadehnia B., Ghobadian Talal, Yusaf R., Mamat TJ Mechanical engineering and machinery With consideration of the biomass energy potential, a gamma type Stirling engine with 220cc swept volume and 580cc total volume was designed, optimized and manufactured. The engine was tested with helium. Working characteristics of the engine were obtained within the range of heat source temperature 370- 410˚C and charge pressure 10 bar for biomass resources and heat source temperature 540- 560 ˚C and range of charge pressure 1-12 bar with 1 bar increments at each stage for gases. By using of thermodynamic and heat transfer design methods, the key parameters of the designed Stirling engine like required surfaces for heat transfer were calculated (hot side 307 and the cold side 243 squares of centimeters). For analysis of fluid flow, two-dimensional flow analysis method was performed by the software CFD methods. The principles of thermodynamics as well as Schmidt theory were adapted to use for modeling the engine and then pressure - volume diagrams of the thermodynamic and Schmidt analysis were compared. During the test, the temperature is monitored by thermocouples and the pressure of the working fluid helium is monitored by pressure sensors. Indicated power, friction power and brake power were measured and maximum brake power output was obtained with helium at 550˚C heat source temperature and 10 bar charge pressure at 700 rpm as 96.7 W. Electrical energy produced from biomass sources.Sugarcane bagasse, wood, wheat straw, poplar wood and sawdust as fuel system were selected. Most power be obtained from the sawdust (46 watt) and pruning of trees for wood for low power (21 watts), respectively. Minimum ignition time of the Sawdust (4 min) and the most time flammable wood from pruned trees (10 min) was measured. At maximum power, the internal thermal efficiency of the engine was measured as 16%. The test results confirm the fact that Stirling engines driven by temperature of biomass gases are able to achieve a valuable output power. Results of the present work encouraged initiating design of a single cylinder, gamma type Stirling engine of 1 kWe capacity for rural electrification. Elsevier Ltd 2015 Article PeerReviewed application/pdf en cc_by_nc_nd http://umpir.ump.edu.my/id/eprint/11067/1/Design%2C%20Fabrication%20and%20Evaluation%20of%20Gamma-Type%20Stirling%20Engine%20to%20Produce%20Electricity%20from%20Biomass%20for%20the%20Micro-CHP%20System.pdf Hojjat, Damirchi and G., Najafi and Siamak, Alizadehnia and B., Ghobadian and Talal, Yusaf and R., Mamat (2015) Design, Fabrication and Evaluation of Gamma-Type Stirling Engine to Produce Electricity from Biomass for the Micro-CHP System. Energy Procedia, 75. pp. 137-143. ISSN 1876-6102. (Published) http://dx.doi.org/10.1016/j.egypro.2015.07.240 DOI: 10.1016/j.egypro.2015.07.240
spellingShingle TJ Mechanical engineering and machinery
Hojjat, Damirchi
G., Najafi
Siamak, Alizadehnia
B., Ghobadian
Talal, Yusaf
R., Mamat
Design, Fabrication and Evaluation of Gamma-Type Stirling Engine to Produce Electricity from Biomass for the Micro-CHP System
title Design, Fabrication and Evaluation of Gamma-Type Stirling Engine to Produce Electricity from Biomass for the Micro-CHP System
title_full Design, Fabrication and Evaluation of Gamma-Type Stirling Engine to Produce Electricity from Biomass for the Micro-CHP System
title_fullStr Design, Fabrication and Evaluation of Gamma-Type Stirling Engine to Produce Electricity from Biomass for the Micro-CHP System
title_full_unstemmed Design, Fabrication and Evaluation of Gamma-Type Stirling Engine to Produce Electricity from Biomass for the Micro-CHP System
title_short Design, Fabrication and Evaluation of Gamma-Type Stirling Engine to Produce Electricity from Biomass for the Micro-CHP System
title_sort design fabrication and evaluation of gamma type stirling engine to produce electricity from biomass for the micro chp system
topic TJ Mechanical engineering and machinery
url http://umpir.ump.edu.my/id/eprint/11067/1/Design%2C%20Fabrication%20and%20Evaluation%20of%20Gamma-Type%20Stirling%20Engine%20to%20Produce%20Electricity%20from%20Biomass%20for%20the%20Micro-CHP%20System.pdf
work_keys_str_mv AT hojjatdamirchi designfabricationandevaluationofgammatypestirlingenginetoproduceelectricityfrombiomassforthemicrochpsystem
AT gnajafi designfabricationandevaluationofgammatypestirlingenginetoproduceelectricityfrombiomassforthemicrochpsystem
AT siamakalizadehnia designfabricationandevaluationofgammatypestirlingenginetoproduceelectricityfrombiomassforthemicrochpsystem
AT bghobadian designfabricationandevaluationofgammatypestirlingenginetoproduceelectricityfrombiomassforthemicrochpsystem
AT talalyusaf designfabricationandevaluationofgammatypestirlingenginetoproduceelectricityfrombiomassforthemicrochpsystem
AT rmamat designfabricationandevaluationofgammatypestirlingenginetoproduceelectricityfrombiomassforthemicrochpsystem