Catalytic co-pyrolysis of epoxy-printed circuit board and plastics over HZSM-5 and HY
- Authors
- Kim, Young-Min; Han, Tae Uk; Kim, Seungdo; Jae, Jungho; Jeon, Jong-Ki; Jung, Sang-Chul; Park, Young-Kwon
- Issue Date
- 2017-12-01
- Publisher
- ELSEVIER SCI LTD
- Citation
- JOURNAL OF CLEANER PRODUCTION, v.168, pp.366 - 374
- Abstract
- The catalytic co-pyrolysis of epoxy-printed circuit board (e-PCB) and thermoplastics, high density polyethylene (HDPE) and polypropylene (PP), over HZSM-5 and HY was performed using a thermogravimetric analyzer and pyrolyzer-gas chromatography/mass spectrometry. The catalytic pyrolysis of e-PCB over both HZSM-5 and HY eliminated the brominated compounds, mainly bromo-phenols and -bisphenol As, to some extent. The co-feeding of HDPE and PP on the catalytic pyrolysis of e-PCB over both HZSM-5 and HY revealed different debromination efficiencies due to the properties of the thermoplastics and catalysts. A comparison of HY(80) and HZSM-5(80) with the same SiO2/Al2O3 ratio (80) revealed HY(80) had a better elimination efficiency of brominated compounds during the catalytic co-pyrolysis of e-PCB and HDPE or PP because of its larger pore size than HZSM-5(80). The lowest bromine content was achieved when HDPE and HY(30) were used as the co-feeding reactant and catalyst on the pyrolysis of e-PCB due to the large pore size and high acidity of HY(30), allowing the easier diffusion of large molecular brominated bisphenol A and HDPE molecules into the pores of the catalyst and efficient catalytic intermolecular reactions in the pores of the catalyst The catalytic co-pyrolysis of e-PCB and HDPE over HY(30) also produced large amounts of mono-aromatic hydrocarbons and mono phenol, which can be used as fuels or chemical feedstock. (C) 2017 Elsevier Ltd. All rights reserved.
- Keywords
- BROMINATED ORGANIC-COMPOUNDS; FLAME-RETARDANT; THERMAL-DECOMPOSITION; METAL-OXIDE; DEGRADATION; OIL; DEHALOGENATION; POLYPROPYLENE; COMPOSITE; FIXATION; BROMINATED ORGANIC-COMPOUNDS; FLAME-RETARDANT; THERMAL-DECOMPOSITION; METAL-OXIDE; DEGRADATION; OIL; DEHALOGENATION; POLYPROPYLENE; COMPOSITE; FIXATION; Catalytic co-pyrolysis; Bromine fixation; Epoxy-printed circuit board; High density polyethylene; Polypropylene; HY
- ISSN
- 0959-6526
- URI
- https://pubs.kist.re.kr/handle/201004/121944
- DOI
- 10.1016/j.jclepro.2017.08.224
- Appears in Collections:
- KIST Article > 2017
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