Hydrothermal Carbonization (HTC) of Biomass for Energy Applications

Author(s):  
S. Kent Hoekman ◽  
Amber Leland ◽  
Larry Felix
Energies ◽  
2018 ◽  
Vol 11 (9) ◽  
pp. 2286 ◽  
Author(s):  
Dhananjay Bhatt ◽  
Ankita Shrestha ◽  
Raj Dahal ◽  
Bishnu Acharya ◽  
Prabir Basu ◽  
...  

The high moisture content of biosolid from a wastewater treatment plant limits its use for agriculture and energy applications. This limitation could be obviated by hydrothermal carbonization, which requires less energy compared to other thermochemical treatment processes, and results in stabilized solid hydrochar product. The present study examined this option by hydrothermally treating the biosolid at three temperatures (180, 200 and 220 °C) for 30 min, and at 200 °C for 15, 30 and 60 min. An increase of 50% in the heating value of the biosolid was obtained after this carbonization. A reduction in the nitrogen concentration in hydrochar was noted with an increase in phosphorus concentration, but potassium concentration remained largely unchanged. Additionally, the carbon to nitrogen ratio in the hydrochar product was higher than the biosolid that makes it suitable for agriculture applications. The chemical oxygen demand of the process water was in the range of 83,000 to 96,000 mg/L. The study thus provides insight into high-value products that can be generated by the hydrothermal carbonization of biosolids.


2018 ◽  
Vol 57 (42) ◽  
pp. 13722-13734 ◽  
Author(s):  
Zhaofeng Wang ◽  
Andrew T. Smith ◽  
Weixing Wang ◽  
Luyi Sun

2021 ◽  
Vol 293 ◽  
pp. 126123
Author(s):  
Diego Ramón Lobato-Peralta ◽  
Estefanía Duque-Brito ◽  
Heidi Isabel Villafán-Vidales ◽  
Adriana Longoria ◽  
P.J. Sebastian ◽  
...  

Author(s):  
B. Khadambari ◽  
S. S. Bhattacharya

Solar has become one of the fastest growing renewable energy sources. With the push towards sustainability it is an excellent solution to resolve the issue of our diminishing finite resources. Alternative photovoltaic systems are of much importance to utilize solar energy efficiently. The Cu-chalcopyrite compounds CuInS2 and CuInSe2 and their alloys provide absorber material of high absorption coefficients of the order of 105 cm-1. Cu2ZnSnS4 (CZTS) is more promising material for photovoltaic applications as Zn and Sn are abundant materials of earth’s crust. Further, the preparation of CZTS-ink facilitates the production of flexible solar cells. The device can be designed with Al doped ZnO as the front contact, n-type window layer (e.g. intrinsic ZnO); an n-type thin film buffer layer (e.g. CdS) and a p-type CZTS absorber layer with Molybdenum (Mo) substrate as back contact. In this study, CZTS films were synthesized by a non-vaccum solvent based process technique from a molecular-ink using a non toxic eco-friendly solvent dimethyl sulfoxide (DMSO). The deposited CZTS films were optimized and characterized by XRD, UV-visible spectroscopy and SEM.


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