Improving the design of coke ovens for analyzing coal blending and coking on TRIZ
Liu Tianming1, Yi Minhui1, Qin Yufei1, Jia Zixuan1, Yang Qingbin2, Wu Pengfei1
1. Hebei Vocational University of Industry and Technology, College of Environmental and Chemical Engineering, Hebei Iron and Steel Coking Enterprises Pollution Control Technology Innovation Centre, Shijiazhuang 050091, China; 2. Shougang Jingtang Xishan Coking Corporation Ltd.,Tangshan 063205, China
To address the challenges of poor simulation accuracy, low utilization of raw coke oven gas, and insufficient parameter monitoring in experimental coke ovens, an improved design was proposed based on TRIZ theory. By optimizing the coking chamber material and heat transfer structure, the system’s durability was enhanced. An integrated purification system was designed, achieving a tar condensation recovery rate of 92% and removal efficiencies of H2S and NH3 exceeding 95%, thereby fulfilling dual objectives of resource recovery and environmental sustainability. Pressure and gravity sensors were incorporated for real-time coke expansion and weight loss monitoring. After optimizing the coal blending formulation, the hydrogen yield was increased by 15%~20%. Post-improvement verification demonstrated a 25% reduction in validation costs and a 30% shortening of the R&D cycle, establishing a high-precision platform for low-carbon transformation in the coking industry. The efficacy of TRIZ theory in driving innovation in industrial equipment was validated.
刘天明1,弋敏慧1,秦钰菲1,贾子轩1,杨庆彬2,吴鹏飞1. 基于TRIZ理论的配煤炼焦综合分析试验焦炉优化设计[J]. 煤炭与化工, 2025, 48(4): 133-137.
Liu Tianming1, Yi Minhui1, Qin Yufei1, Jia Zixuan1, Yang Qingbin2, Wu Pengfei1. Improving the design of coke ovens for analyzing coal blending and coking on TRIZ. CCI, 2025, 48(4): 133-137.