A method and system for enhancing the calorific value of biomass pellet fuel
By monitoring the surface reflectivity of biomass pellets with a near-infrared spectrometer, a predictive model for the evolution of microcracks was constructed. The cooling wind speed was dynamically controlled, which solved the problem of microcrack propagation during the cooling process of biomass pellet fuel, achieving an increase in calorific value and a reduction in breakage rate, thereby improving combustion stability and calorific value consistency.
Patent Information
- Authority / Receiving Office
- CN Β· China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- GUANGZHOU JINYE ENERGY SAVING TECH CO LTD
- Filing Date
- 2026-04-27
- Publication Date
- 2026-06-30
AI Technical Summary
Existing biomass pellet fuel cooling processes fail to effectively consider the differences in composition, density, and internal stress state of different batches of raw materials, resulting in rapid expansion of surface microcracks, leading to high breakage rate, low combustion stability and calorific value release efficiency, and poor calorific value consistency.
Near-infrared spectrometers were used to continuously collect the reflectance of biomass particles in both 940nm and 1200nm bands. The decay rate of the reflectance ratio of the two bands was calculated, a predictive model for the evolution of microcracks was constructed, and cooling wind speed was dynamically matched with graded control commands to achieve multi-level cooling wind speed control.
It significantly reduced the breakage rate, improved the uniformity of calorific value and combustion stability. The breakage rate decreased from 12.6% to 7.8%, the calorific value increased from 16.8 MJ/kg to 17.5 MJ/kg, and the standard deviation of calorific value decreased from 0.35 MJ/kg to 0.12 MJ/kg.
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Abstract
Citation Information
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