Study on the thermal transformation of basic components of wind turbine blade

Author:

Ge Lichao1,Jiang Han1ORCID,Feng Hongcui23,Xu Chunyao1,Lu Yanning4,Li Xi1,Chen Bo4,Xu Chang1

Affiliation:

1. College of Energy and Electrical Engineering Hohai University Nanjing China

2. School of Electrical Engineering Nanjing Vocational University of Industry Technology Nanjing China

3. Jiangsu Wind Power Engineering Technology Center Nanjing Vocational University of Industry Technology Nanjing China

4. Jiangsu Frontier Electric Technology Co., Ltd. Nanjing China

Abstract

AbstractTo alleviate the environmental pollution caused by waste wind turbine blades and provide new ideas for recycling, the thermochemical characteristics of four basic components of composite materials commonly used in wind turbine blades were studied in this paper. Thermogravimetric experiments in different atmospheres and heating rates, and thermogravimetric‐infrared combined experiments were carried out. The results show that the reaction of epoxy resin and thermoplastic polyurethane was easy and deep in N2 and CO2. Except for glass fiber, the other three components showed different combustion characteristics in air. The maximum reaction rates and activation energy of resin‐based components in N2 increased with increasing heating rate. The pyrolysis products of the four basic components all contained CO2 and CO, and some aromatic substances could be generated during the thermal transformation of epoxy resin and thermoplastic polyurethane. It can be concluded that the thermal transformation properties of the basic components of the composite material of wind turbine blades can be used to treat the waste blades, making the resin as the matrix material undergo a thermal transformation reaction and recover the fiber. This is to effectively guarantee the green and sustainable development of wind power generation.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

Waste Management and Disposal,Renewable Energy, Sustainability and the Environment,General Chemical Engineering

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