| 000 | 02611ntm a2200265 a 4500 | ||
|---|---|---|---|
| 001 | vtls000083384 | ||
| 003 | KUKTEM | ||
| 005 | 20251117113234.0 | ||
| 008 | 141113t2013 my a f m 000 0 eng d | ||
| 020 | _aTHE0004693(Local) | ||
| 039 | 9 |
_a201905131351 _bsmfh _c201411131500 _dariffin _y201411131159 _zariffin |
|
| 040 | _aUMP | ||
| 090 | _aTP359.B48 S93 2013 r Bc. | ||
| 100 | 0 | _aMuhammad Syafiq Aziz | |
| 245 | 1 | 0 |
_aThermodynamic simulation of biogas composition in agricultural waste gasification / _cMuhammad Syafiq Aziz |
| 260 |
_aKuantan, Pahang : _bUMP, _c2013 |
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| 300 |
_aiv, 52 p. : _bill. (some col.) ; _c30 cm. + _e1 CD-ROM |
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| 502 | _aProject paper (Bachelor of Chemical Engineering (Gas Technology) -- Universiti Malaysia Pahang – 2013 | ||
| 504 | _aBibliography : p. 39-41 | ||
| 520 | 3 | _aBeing one of the world¡¯s largest producers of palm oil, Malaysia has an abundant supply of oil-palm fronds due to the large plantation areas in the country. Considering the large and consistent supply, oil-palm fronds could be a promising source of biomass energy through gasification. In this work, the study is conducted by thermodynamic simulation to determine the biogas composition of oil palm fronds (OPF). Computer simulation using MATLAB is performed to predict composition of the synthesis gas. A preliminary gasification of oil palm fronds is conducted to understand the process and to improve the study in the future. It is proven that oil palm fronds are feasible for gasification and have a good potential as a renewable energy source. Biomass gasification is a thermochemical process of converting biomass into the producer gas or synthesis gas which can be subsequently used for heat, power and liquid fuels production through various synthesis processes. The major objective of this study was to identify the biogas composition from oil palm fronds (OPF) by thermodynamic simulation using thermodynamic equilibrium model as suit to the Gibbs equations and formulations. Few assumptions were made as to ease the analysis of data. Results obtained were tabulated and graphs were sketched. Different temperature with range of 650¢ªC to 1200¢ªC is the manipulate variable. The composition of combustible gases was decreasing as the temperature increase. Also as the moisture content is increase, the composition of CO decrease, while other gases were slightly increases and decreases. | |
| 650 | 0 | _aBiogas | |
| 650 | 0 | _aBiogas industry | |
| 650 | 0 | _aBiogeochemical cycles | |
| 999 |
_aVIRTUA40 _c5256 _d5262 |
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| 999 | _aVTLSSORT0080*0200*0400*0900*1000*2450*2600*3000*5020*5040*5200*6500*6501*6502*9992 | ||