Isothermal co-pyrolysis of hazelnut shell and ultra-high molecular weight polyethylene: The effect of temperature and composition on the amount of pyrolysis products

被引:48
作者
Caglar, Atila [1 ]
Aydinli, Bahattin [1 ]
机构
[1] Kastamonu Univ, Fac Educ, TR-37200 Kastamonu, Turkey
关键词
Pyrolysis; Hazelnut shell; UHMWPE; Waste; Synergy; Liquid product; Heavy liquid; BIO-OIL YIELD; THERMOGRAVIMETRIC CHARACTERISTICS; BIOMASS ENERGY; OLIVE RESIDUE; PART; FUELS; POLYPROPYLENE; SAWDUST;
D O I
10.1016/j.jaap.2009.08.002
中图分类号
O65 [分析化学];
学科分类号
070302 [分析化学];
摘要
Solid wastes compromise biomass and plastics in terms of energy recuperation. Pyrolysis is the promising process in thermochemical conversions. In this study, isothermal co-pyrolysis of hazelnut shell and ultra-high molecular weight polyethylene (UHMWPE) mixtures was executed in hand made pyrolysis reactor. The effect of temperature and composition on liquid, solid and gas yields was clarified with descriptive charts. It can be definitely stated that there are interactions between components which are called synergistic effects. Temperature change and ratio of UHMWPE do not alter solid product yield significantly. Co-existence of hazelnut shell and UHMWPE renders gas products in expense of liquid at all temperature and composition conditions. Liquid products were collected separately as heavy and light liquid. Liquid fuel is preferred togas and solid ones due to commercial reasons. Combustible heavy liquid increases synergistically with increasing UHMWPE ratio. Here, synergistically means it is higher than mathematical calculation. It was found that just at 515 degrees C and 0.5:1.5 (hazelnut shell/UHMWPE) composition total liquid product is above the calculated values. Additionally, 1.0:1.0 composition again at the same temperature produces highest heavy liquid yield. (C) 2009 Elsevier B.V. All rights reserved.
引用
收藏
页码:304 / 309
页数:6
相关论文
共 34 条
[1]
Thermogravimetric characteristics and kinetic of co-pyrolysis of olive residue with high density polyethylene [J].
Aboulkas, A. ;
El Harfi, K. ;
Nadifiyine, M. ;
El Bouadili, A. .
JOURNAL OF THERMAL ANALYSIS AND CALORIMETRY, 2008, 91 (03) :737-743
[2]
Non-isothermal kinetic studies on co-processing of olive residue and polypropylene [J].
Aboulkas, A. ;
El Harfi, K. ;
El Bouadili, A. .
ENERGY CONVERSION AND MANAGEMENT, 2008, 49 (12) :3666-3671
[3]
Biomass energy in the world, use of biomass and potential trends [J].
Balat, M ;
Ayar, G .
ENERGY SOURCES, 2005, 27 (10) :931-940
[4]
Investigations into the characteristics of oils produced from co-pyrolysis of biomass and tire [J].
Cao, Qing ;
Jin, Li'e ;
Bao, Weiren ;
Lv, Yongkang .
FUEL PROCESSING TECHNOLOGY, 2009, 90 (03) :337-342
[5]
Thermogravimetric characteristics and kinetic study of biomass co-pyrolysis with plastics [J].
Chattopadhyay, Jayeeta ;
Kim, Chulho ;
Kim, Raehyun ;
Pak, Daewon .
KOREAN JOURNAL OF CHEMICAL ENGINEERING, 2008, 25 (05) :1047-1053
[6]
Biomass and renewable fuels [J].
Chum, HL ;
Overend, RP .
FUEL PROCESSING TECHNOLOGY, 2001, 71 (1-3) :187-195
[7]
Flash co-pyrolysis of biomass with polyhydroxybutyrate: Part 1. Influence on bio-oil yield, water content, heating value and the production of chemicals [J].
Cornelissen, T. ;
Jans, M. ;
Yperman, J. ;
Reggers, G. ;
Schreurs, S. ;
Carleer, R. .
FUEL, 2008, 87 (12) :2523-2532
[8]
Flash co-pyrolysis of biomass with polylactic acid. Part 1: Influence on bio-oil yield and heating value [J].
Cornelissen, T. ;
Yperman, J. ;
Reggers, G. ;
Schreurs, S. ;
Carleer, R. .
FUEL, 2008, 87 (07) :1031-1041
[9]
Flash co-pyrolysis of biomass: The influence of biopolymers [J].
Cornelissen, T. ;
Jans, M. ;
Stals, M. ;
Kuppens, T. ;
Thewys, T. ;
Janssens, G. K. ;
Pastijn, H. ;
Yperman, J. ;
Reggers, G. ;
Schreurs, S. ;
Carleer, R. .
JOURNAL OF ANALYTICAL AND APPLIED PYROLYSIS, 2009, 85 (1-2) :87-97
[10]
Estimation of calorific values of fuels from lignocellulosics [J].
Demirbas, A ;
Gullu, D ;
Caglar, A ;
Akdeniz, F .
ENERGY SOURCES, 1997, 19 (08) :765-770