Evaluation of the properties of bio-asphalt derived from waste cooking oil and low-density polyethylene through the pyrolysis process

被引:1
|
作者
Kumar, T. H. Varun [1 ]
Mayakrishnan, Muthukumar [1 ]
Somasundaram, Murugavelh [2 ]
机构
[1] VIT, Sch Civil Engn, Vellore, India
[2] VIT, CO2 Res & Green Technol Ctr, Vellore, India
关键词
Waste cooking oil (WCO); Low Density Polyethylene (LDPE); Bio-asphalt; RHEOLOGICAL PROPERTIES; BINDERS; MIX; BITUMEN; IMPROVE;
D O I
10.1016/j.cscm.2024.e03604
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
The aim of this study is to prepare a bio-asphalt for flexible pavement construction using a fixedbed pyrolysis reactor. This method involves incorporating waste cooking oil (WCO) and lowdensity polyethylene (LDPE) as feedstock materials. Through this study, an attempt has been made to make use of waste materials and promote the use of environmentally friendly binders in sustainable road construction. The pyrolysis experiment was conducted at different temperatures, varying from 250 degrees C to 500 degrees C for different blends of waste cooking oil (WCO) and low-density polyethylene (LDPE), i.e., 1:0, 3:1, 1:1, 1:3, and 0:1, respectively. At a temperature of 350 degrees C, the pyrolysis process is more effective for converting various blends of waste cooking oil (WCO) and low-density polyethylene (LDPE) into bio-asphalt. The maximum bio-asphalt yield of 82 wt% was reported for the 1:3 blend at a temperature of 350 degrees C. The elemental analysis of an equal mass of waste cooking oil (WCO) and low-density polyethylene (LDPE) reported a carbon content of 83.93 wt%, a hydrogen content of 13.29 wt%, and a lower oxygen content of 2.55 wt%. The Gas Chromatography Mass Spectrography (GC-MS) analysis indicated the presence of chemical compounds such as pentadecane, heptadecane, dodecane, cyclopentylpropyl, and hexacosene in the 1:1 blend. The thermogravimetric and derivative thermogravimetric analyses indicate that the 1:1 blend and 1:3 blend can withstand temperatures around 473 degrees C and 475 degrees C, respectively. The Fourier transform infrared spectroscopy (FT-IR) analysis showed the presence of alkane, alkene, ester, and other aromatic compounds. Based on this present study, it has been noted that the chemical composition of a 1:1 blend of waste cooking oil (WCO) and low-density polyethylene (LDPE)-based bio-asphalt contains similar chemical compositions as asphalt binder, and it can be used as a modifier for conventional asphalt binder.
引用
收藏
页数:15
相关论文
共 38 条
  • [1] Evaluation of optimized bio-asphalt containing high content waste cooking oil residues
    Sun, Daquan
    Sun, Guoqiang
    Du, Yuchuan
    Zhu, Xingyi
    Lu, Tong
    Pang, Qi
    Shi, Shenyue
    Dai, Ziwei
    FUEL, 2017, 202 : 529 - 540
  • [2] Preparation, Characterization, and Performance Evaluation of Petroleum Asphalt Modified with Bio-Asphalt Containing Furfural Residue and Waste Cooking Oil
    Lai, Shuo-Rong
    Li, Shu-Jun
    Xu, Yong-Li
    Xu, Wen-Yuan
    Zhang, Xian-Quan
    POLYMERS, 2022, 14 (09)
  • [3] THE POTENTIAL OF WASTE COOKING OIL AS BIO-ASPHALT FOR ALTERNATIVE BINDER - AN OVERVIEW
    Azahar, Wan Nur Aifa Wan
    Bujang, Mastura
    Jaya, Ramadhansyah Putra
    Hainin, Mohd Rosli
    Mohamed, Azman
    Ngadi, Norzita
    Jayanti, Dewi Sri
    JURNAL TEKNOLOGI, 2016, 78 (04): : 111 - 116
  • [4] Evaluation of the high-temperature rheological performance of tire pyrolysis oil-modified bio-asphalt
    Al-Sabaeei, Abdulnaser M.
    Napiah, Madzlan B.
    Sutanto, Muslich H.
    Alaloul, Wesam S.
    Yusoff, Nur Izzi Md
    Khairuddin, Faridah Hanim
    Memon, Abdul Muhaimin
    INTERNATIONAL JOURNAL OF PAVEMENT ENGINEERING, 2022, 23 (11) : 4007 - 4022
  • [5] Laboratory investigation on chemical and rheological properties of bio-asphalt binders incorporating waste cooking oil
    Wang, Chao
    Xue, Lei
    Xie, Wei
    You, Zhanping
    Yang, Xu
    CONSTRUCTION AND BUILDING MATERIALS, 2018, 167 : 348 - 358
  • [6] Properties of asphalt binder modified by bio-oil derived from waste cooking oil
    Sun, Zhaojie
    Yi, Junyan
    Huang, Yudong
    Feng, Decheng
    Guo, Chaoyang
    CONSTRUCTION AND BUILDING MATERIALS, 2016, 102 : 496 - 504
  • [7] Mechanical Behavior of Low-Density Polyethylene Waste Modified Hot Mix Asphalt
    Adaluz Rincon-Estepa, Jessica
    Victoria Gonzalez-Salcedo, Esthefanny
    Alexander Rondon-Quintana, Hugo
    Alberto Reyes-Lizcano, Fredy
    Gabriel Bastidas-Martinez, Juan
    SUSTAINABILITY, 2022, 14 (07)
  • [8] Low-cost chemical modification of refined used cooking oil to produce long-lasting bio-asphalt pavements
    Enfrin, Marie
    Gowda, Anirudh
    Giustozzi, Filippo
    RESOURCES CONSERVATION AND RECYCLING, 2024, 204
  • [9] Formulation and aging resistance of modified bio-asphalt containing high percentage of waste cooking oil residues
    Sun, Daquan
    Lu, Tong
    Xiao, Feipeng
    Zhu, Xingyi
    Sun, Guoqiang
    JOURNAL OF CLEANER PRODUCTION, 2017, 161 : 1203 - 1214
  • [10] Evaluation of the chemical composition and rheological properties of bio-asphalt from different biomass sources
    Bao, De-Xiang
    Yu, Yun-Yan
    Zhao, Quan-Man
    ROAD MATERIALS AND PAVEMENT DESIGN, 2020, 21 (07) : 1829 - 1843