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首页> 外文期刊>Bioresource Technology: Biomass, Bioenergy, Biowastes, Conversion Technologies, Biotransformations, Production Technologies >Direct measures of mechanical energy for knife mill size reduction of switchgrass, wheat straw, and corn stover
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Direct measures of mechanical energy for knife mill size reduction of switchgrass, wheat straw, and corn stover

机译:机械能的直接量度,用于降低柳枝,、麦秸和玉米秸秆的粉碎机尺寸

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Lengthy straw/stalk of biomass may not be directly fed into grinders such as hammer mills and disc refiners. Hence, biomass needs to be preprocessed using coarse grinders like a knife mill to allow for efficient feeding in refiner mills without bridging and choking. Size reduction mechanical energy was directly measured for switchgrass (Panicum virgatum L.), wheat straw (Triticum aestivum L.), and corn stover (Zea mays L.) in an instrumented knife mill. Direct power inputs were determined for different knife mill screen openings from 12.7 to 50.8 mm, rotor speeds between 250 and 500 rpm, and mass feed rates from 1 to 11 kg/min. Overall accuracy of power measurement was calculated to be +/- 0.003 kW. Total specific energy (kWh/Mg) was defined as size reduction energy to operate mill with biomass. Effective specific energy was defined as the energy that can be assumed to reach the biomass. The difference is parasitic or no-load energy of mill. Total specific energy for switchgrass, wheat straw, and corn stover chopping increased with knife mill speed, whereas, effective specific energy decreased marginally for switchgrass and increased for wheat straw and corn stover. Total and effective specific energy decreased with an increase in screen size for all the crops studied. Total specific energy decreased with increase in mass feed rate, but effective specific energy increased for switchgrass and wheat straw, and decreased for corn stover at increased feed rate. For knife mill screen size of 25.4 mm and optimum speed of 250 rpm, optimum feed rates were 7.6, 5.8, and 4.5 kg/min for switchgrass, wheat straw, and corn stover, respectively, and the corresponding total specific energies were 7.57, 10.53, and 8.87 kWh/Mg and effective specific energies were 1.27, 1.50, and 0.24 kWh/Mg for switchgrass, wheat straw, and corn stover, respectively. Energy utilization ratios were calculated as 16.8%, 14.3%, and 2.8% for switchgrass, wheat straw, and corn stover, respectively. These data will be useful for preparing the feed material for subsequent fine grinding operations and designing new mills.
机译:较长的秸秆/生物质秸秆可能无法直接送入粉碎机(例如锤磨机和盘式精磨机)中。因此,需要使用粗磨机如刀磨机对生物质进行预处理,以允许在精磨机中高效进料,而不会造成桥接和阻塞。在仪器磨机中直接测量柳枝((Panicum virgatum L.),麦秆(Triticum aestivum L.)和玉米秸秆(Zea mays L.)的尺寸减小机械能。对于不同的刀磨机筛网开度(从12.7至50.8 mm),转子速度在250至500 rpm之间以及质量进料速度从1至11 kg / min,确定直接功率输入。功率测量的总体精度经计算为+/- 0.003 kW。总比能(kWh / Mg)定义为使用生物质运行磨机的尺寸减小能量。有效比能定义为可以达到生物质的能量。区别是工厂的寄生或空载能量。柳枝,、麦草和玉米秸秆切碎的总比能随刀磨速度的增加而增加,而柳枝switch的有效比能略有下降,而麦秸和玉米秸秆的有效比能则有所增加。所有研究农作物的总和有效比能均随着屏幕尺寸的增加而降低。总比能随质量进料速率的增加而降低,但对于柳枝and和小麦秸秆,有效比能则增加,而玉米秸秆的有效比能则随着进料速率的增加而降低。对于25.4 mm的刀磨筛网尺寸和250 rpm的最佳速度,柳枝switch,麦草和玉米秸秆的最佳进料速率分别为7.6、5.8和4.5 kg / min,相应的总比能分别为7.57、10.53 ,柳枝switch,小麦秸秆和玉米秸秆的有效比能量分别为8.27 kWh / Mg和1.87、1.50和0.24 kWh / Mg。柳枝,、麦草和玉米秸秆的能源利用率分别为16.8%,14.3%和2.8%。这些数据对于为后续的精细研磨操作准备进料和设计新轧机将很有用。

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