Study on Direct Reduction in Carbon-Bearing Pellets Using Biochar

Author:

Wu Jianlong12,Wu Shengli3,An Gang2,Ma Chengwei2,Teng Zhaojie2,Xu Kun3,Wang Chuan345,Ning Xiaojun3,Wang Guangwei3

Affiliation:

1. Shougang Group Research Institute of Technology, Beijing 100043, China

2. Shougang Jingtang Iron and Steel Co., Ltd., Tangshan 063200, China

3. School of Metallurgical and Ecological Engineering, University of Science and Technology Beijing, Beijing 100083, China

4. Swerim AB, SE-971 25 Luleå, Sweden

5. Material Science and Engineering, KTH Royal Institute of Technology, SE-100 44 Stockholm, Sweden

Abstract

As a renewable, carbon-neutral raw material, the application of biomass in steel production is conducive to reducing greenhouse gas emissions and achieving green and sustainable development in the steel industry. The heating and reduction process of a rotary hearth furnace was simulated under laboratory conditions to roast and reduce biochar carbon-bearing pellets with coke powder and anthracite carbon-bearing pellets as a comparison. This was conducted to investigate the impact of biochar as a reducing agent on the direct reduction in carbon-bearing pellets. Under various reduction temperatures, carbon/oxygen ratios, and reduction times, tests were conducted on the compressive strength and metallization rate of carbon-bearing pellets made using typical binder bentonite. Results show that with the increase in reduction temperature, the metallization rate of pellets increases, while the compressive strength initially decreases and then increases, reaching the lowest point at 900 °C and 1000 °C. When the ratio of carbon to oxygen is between 0.7 and 0.9 and the reduction time is between 15 and 25 min, carbon-bearing pellets meet the requirements of both the metallization rate and the strength, with the metallization rate above 80%. However, severe volume swelling and low strength were observed in biochar carbon-bearing pellets at 900 °C and 1000 °C, which negatively impacted multi-layered charging and heat transfer efficiency in the blast furnace. Therefore, a novel laboratory-prepared binder was introduced in the preparation process of biochar carbon-bearing pellets at an appropriate addition ratio of 5–8%. Without producing any swelling concerns, the inclusion of this binder considerably improved the compression strength and metallization rate of the pellets, enabling them to fulfill the standards for raw materials in the blast furnace.

Funder

National Natural Science Foundation of China

Swedish Innovation Agency

Publisher

MDPI AG

Subject

Management, Monitoring, Policy and Law,Renewable Energy, Sustainability and the Environment,Geography, Planning and Development,Building and Construction

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