Exergy analysis of a biorefinery process for co-production of third-generation l-lactic acid and electricity from Eucheuma denticulatum residues

Energy ◽  
2021 ◽  
pp. 122968
Author(s):  
Millicent Rosette Wan Yi Chung ◽  
Inn Shi Tan ◽  
Henry Chee Yew Foo ◽  
Man Kee Lam
2021 ◽  
pp. 124930
Author(s):  
Choi Yan Chai ◽  
Inn Shi Tan ◽  
Henry Chee Yew Foo ◽  
Man Kee La ◽  
Kevin Tian Xiang Tong ◽  
...  

2021 ◽  
pp. 125880
Author(s):  
Kevin Tian Xiang Tong ◽  
Inn Shi Tan ◽  
Henry Chee Yew Foo ◽  
Adrian Chiong Yuh Tiong ◽  
Man Kee Lam ◽  
...  

2020 ◽  
Vol 18 (1) ◽  
pp. 874-881
Author(s):  
Laras Prasakti ◽  
Sangga Hadi Pratama ◽  
Ardian Fauzi ◽  
Yano Surya Pradana ◽  
Arief Budiman ◽  
...  

AbstractAs fossil fuels were depleting at an alarming rate, the development of renewable energy has become necessary. One of the promising renewable energy to be used is biodiesel. The interest in using third-generation feedstock, which is microalgae, is rapidly growing. The use of third-generation biodiesel feedstock will be more beneficial as it does not compete with food crop use and land utilization. The advantageous characteristic which sets microalgae apart from other biomass sources is that microalgae have high biomass yield. Conventionally, microalgae biodiesel is produced by lipid extraction followed by transesterification. In this study, combination process between hydrothermal liquefaction (HTL) and esterification is explored. The HTL process is one of the biomass thermochemical conversion methods to produce liquid fuel. In this study, the HTL process will be coupled with esterification, which takes fatty acid from HTL as raw material for producing biodiesel. Both the processes will be studied by simulating with Aspen Plus and thermodynamic analysis in terms of energy and exergy. Based on the simulation process, it was reported that both processes demand similar energy consumption. However, exergy analysis shows that total exergy loss of conventional exergy loss is greater than the HTL-esterification process.


Energy ◽  
2018 ◽  
Vol 149 ◽  
pp. 623-638 ◽  
Author(s):  
Mortaza Aghbashlo ◽  
Mohsen Mandegari ◽  
Meisam Tabatabaei ◽  
Somayeh Farzad ◽  
Mohamad Mojarab Soufiyan ◽  
...  

2022 ◽  
Vol 253 ◽  
pp. 115155
Author(s):  
Kai Hui Wong ◽  
Inn Shi Tan ◽  
Henry Chee Yew Foo ◽  
Li Min Chin ◽  
Joel Rui Neng Cheah ◽  
...  

Author(s):  
A. W. Sedar ◽  
G. H. Bresnick

After experimetnal damage to the retina with a variety of procedures Müller cell hypertrophy and migration occurs. According to Kuwabara and others the reactive process in these injuries is evidenced by a marked increase in amount of glycogen in the Müller cells. These cells were considered originally supporting elements with fiber processes extending throughout the retina from inner limiting membrane to external limiting membrane, but are known now to have high lactic acid dehydrogenase activity and the ability to synthesize glycogen. Since the periodic acid-chromic acid-silver methenamine technique was shown to demonstrate glycogen at the electron microscope level, it was selected to react with glycogen in the fine processes of the Müller cell that ramify among the neural elements in various layers of the retina and demarcate these cells cytologically. The Rhesus monkey was chosen as an example of a well vascularized retina and the rabbit as an example of a avascular retina to explore the possibilities of the technique.


2000 ◽  
Vol 27 (12) ◽  
pp. 1030-1033 ◽  
Author(s):  
M. Patel ◽  
H. Tawfik ◽  
Y. Myint ◽  
D. Brocklehurst ◽  
J. W. Nicholson

2007 ◽  
Vol 38 (8) ◽  
pp. 28
Author(s):  
DAMIAN MCNAMARA
Keyword(s):  

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