Techno-economic Analysis and Life Cycle Assessment of Gluconic Acid and Xylonic Acid Production from Waste Materials

被引:9
作者
Balchandani, Sweta [1 ]
Alipanah, Majid [1 ]
Barboza, Caitlin A. [2 ]
Ferreira, Rafael G. [3 ]
Reed, David W. [2 ]
Fujita, Yoshiko [2 ]
Thompson, Vicki S. [2 ]
Jin, Hongyue [1 ]
机构
[1] Univ Arizona, Crit Mat Inst, Dept Syst & Ind Engn, Tucson, AZ 85721 USA
[2] Idaho Natl Lab, Crit Mat Inst, Idaho Falls, ID 83415 USA
[3] Intelligen Brazil, Sao Paulo, Brazil
关键词
Organic acid; Critical material; Bioleaching; Value recovery; SuperPro Designer; RARE-EARTH-ELEMENTS; PRETREATED CORN STOVER; LIGNOCELLULOSIC BIOMASS; GLUCONOBACTER-OXYDANS; ORGANIC-ACIDS; FERMENTATION; CONVERSION; FEEDSTOCK; CELLULOSE; BIOFUELS;
D O I
10.1021/acssuschemeng.3c05117
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Organic acid-based bioleaching has attracted significant research interest for the recovery of rare earth elements (REEs) and other critical metals. Utilizing biologically produced leaching agents, known as biolixiviants, derived from waste materials holds great promise for enhancing the economic viability and environmental sustainability of bioleaching processes. This study focuses on the modeling and optimization of biolixiviant production using corn stover (CS), date palm clippings (DP), and nonrecyclable paper (NP). Techno-economic analysis revealed that gluconic acid production from NP is more cost-effective than that from CS and DP, with respective costs of $0.04/kg, $0.06-0.08/kg, and $0.06-0.09/kg of the biolixiviant, yielding gluconic acid concentrations of 135.39, 172.90, and 176.87 mM, respectively. Life cycle assessment demonstrated that biolixiviant production from NP exerts the lowest environmental impact compared with the other evaluated substrates. When applied to the bioleaching of a neodymium-iron-boron magnet swarf, the biolixiviant derived from NP exhibits the highest leaching efficiencies, confirming its cost and environmental competitiveness in comparison to CS and DP.
引用
收藏
页码:17708 / 17717
页数:10
相关论文
共 65 条
[1]  
[Anonymous], About Us
[2]  
[Anonymous], about us
[3]  
[Anonymous], 2015, MINERAL COMMODITY SU
[4]  
[Anonymous], About Us
[5]  
[Anonymous], 2020, EPA 530-F-20-009
[6]   Critical raw materials - Advanced recycling technologies and processes: Recycling of rare earth metals out of end of life magnets by bioleaching with various bacteria as an example of an intelligent recycling strategy [J].
Auerbach, Romy ;
Bokelmann, Katrin ;
Stauber, Rudolf ;
Gutfleisch, Oliver ;
Schnell, Sylvia ;
Ratering, Stefan .
MINERALS ENGINEERING, 2019, 134 :104-117
[7]   Fermentative production of gluconic acid: A membrane-integrated Green process [J].
Banerjee, Subhamay ;
Kumar, Ramesh ;
Pal, Parimal .
JOURNAL OF THE TAIWAN INSTITUTE OF CHEMICAL ENGINEERS, 2018, 84 :76-84
[8]   Leaching kinetics study of neodymium from the scrap magnet using acetic acid [J].
Behera, S. S. ;
Parhi, P. K. .
SEPARATION AND PURIFICATION TECHNOLOGY, 2016, 160 :59-66
[9]   Evaluating organic acids as alternative leaching reagents for rare earth elements recovery from NdFeB magnets [J].
Belfqueh, Sahar ;
Seron, Alain ;
Chapron, Simon ;
Arrachart, Guilhem ;
Menad, Nourredine .
JOURNAL OF RARE EARTHS, 2023, 41 (04) :621-631
[10]  
Berhe T, 2017, METHODSX, V4, P391, DOI 10.1016/j.mex.2017.09.005