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平板型固体氧化物燃料电池内温度分布规律 被引量:1
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作者 张小坤 吕大伟 +2 位作者 尹中强 申双林 王绍荣 《中国电力》 CSCD 北大核心 2023年第6期123-131,共9页
固体氧化物燃料电池(solid oxide fuel cell,SOFC)内温度梯度引起的热应力是制约其寿命的关键问题之一。针对传统SOFC温度分布测量实验中电炉对实验结果的影响,提出了采用对测试电池保温的方法,给电池提供近似绝热的工作环境,以便将实... 固体氧化物燃料电池(solid oxide fuel cell,SOFC)内温度梯度引起的热应力是制约其寿命的关键问题之一。针对传统SOFC温度分布测量实验中电炉对实验结果的影响,提出了采用对测试电池保温的方法,给电池提供近似绝热的工作环境,以便将实验结果拓展到实际电堆中。采用该方法,通过实验研究了平板型SOFC单电池内温度分布规律,实验结果表明:电池保温可有效降低电池与电炉间的换热,24 A放电时,电池内最大温度为782℃,比炉膛温度高32℃,证明电池保温可有效降低电炉的影响;当电流为18 A、24 A和30 A时,电池内最大温度分别为777℃、782℃和796℃,但最大温差均为5℃左右;电池内温度梯度受进气的冷却作用影响较大,但其影响范围较小,因此在电池气体入口局部会产生较大的温差,影响电池的运行安全性。 展开更多
关键词 固体氧化物燃料电池 温度分布 流场结构 传热
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Effect of Biochar Type and Size on<i>in Vitro </i>Rumen Fermentation of Orchard Grass Hay
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作者 Zach D. McFarlane Phillip R. Myer +4 位作者 Emily R. Cope Neil D. Evans T. Carson Bone Bryan E. Biss J. Travis Mulliniks 《Agricultural Sciences》 2017年第4期316-325,共10页
Biochar, a byproduct from the biofuels industry, may be a potential feed additive in ruminant diets due to possible improvements in microbial fermentation. Therefore, the objective of this study was to determine the n... Biochar, a byproduct from the biofuels industry, may be a potential feed additive in ruminant diets due to possible improvements in microbial fermentation. Therefore, the objective of this study was to determine the nutritive value, in vitro digestibility, volatile fatty acid (VFA) production, and gas production of biochar inclusion to an orchard grass (Dactylis glomerata) basal diet. The study was designed as a 3 × 2 factorial arrangement with 3 different biochar sources and 2 biochar processed sizes as the main effects factors. Experimental treatments were biochar from 3 different tree types: 1) Chestnut Oak (Quercus prinus L.;CO), 2) Yellow Poplar (Liriodendron tulipifera;YP), or 3) White Pine (Pinus strobus L.;WP), and processed at 2 different biochar particle sizes: a) 178 μm (Coarse). Biochar was added to the basal diet of orchard grass hay (872.35 g/kg of DM, 98.31 g/kg of CP, and 704.02 g/kg of aNDF, DM basis) at a rate of 81 g/kg DM. Biochar residual ash content was greater (P P P = 0.01) with lower aNDF content in both WP sizes compared with their respective biochar type and size. Gas production was not influenced (P = 0.23) by biochar tree type;however, gas production was increased (P = 0.05) by Fine particle size compared with Coarse biochar. The in vitro true digestibility (IVTD) of orchard grass hay was increased (P = 0.01) by the inclusion of Fine biochar particle size compared with Coarse particle size. Additionally, in vitro CP true digestibility (DCP) exhibited a type × size interaction (P = 0.01). Crude protein digestibility was lower for Fine particle-sized CO and WP biochar sources compared with Coarse particle-sized CO and WP (P ≤ 0.004). However, DCP was not different between Coarse and Fine particle-sized YP biochar (P = 0.70). Volatile fatty acids (acetate, propionate, and butyrate) were not altered by biochar type (P ≥ 0.66) or particle size (P ≥ 0.19). These results indicate that both tree type and particle size of biochar may need to be carefully considered before incorporating into a ruminant diet. Furthermore, Fine particle-sized biochar may be the most effective to incorporate as a feed additive in a ruminant diet based on digestibility parameters. 展开更多
关键词 BIOCHAR Forage DIGESTIBILITY Gas Production Rumen Fermentation
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