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50kW微电网蓄能系统最优充放电效能研究
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作者 李冬明 王北宁 +2 位作者 孙宏宇 方贤群 水甲 《能源与节能》 2012年第1期88-89,96,共3页
根据微电网蓄能系统的工作特点,介绍了一种50 kW微电网系统结构,分析了其核心构造和工作特点,进行了铅酸蓄电池充电控制方法分析,设计了一种适用于微电网运行环境下铅酸蓄电池蓄能系统新型充电控制策略。通过采用对比实验显示该控制策... 根据微电网蓄能系统的工作特点,介绍了一种50 kW微电网系统结构,分析了其核心构造和工作特点,进行了铅酸蓄电池充电控制方法分析,设计了一种适用于微电网运行环境下铅酸蓄电池蓄能系统新型充电控制策略。通过采用对比实验显示该控制策略的有效性,并利用8组实验数据说明,该控制策略对微电网工况下,蓄能系统充放电效能的影响,能够显著提高微电网蓄能系统充放电效能,提高蓄电池使用寿命。 展开更多
关键词 微电网 蓄能系统 最优充放电效能
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使用真空电浆技术制备PEFC燃料电池白金触媒粉体及其性能研究
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作者 陈士堃 钟志业 《过程工程学报》 CAS CSCD 北大核心 2004年第z1期152-155,共4页
本实验使用磁控溅镀法制作高分子电解质燃料电池碳电极之Pt触媒颗粒层,并研究背景真空度及临场退火热处理等制程参数对Pt披覆型碳电极的影响.实验结果显示,在背景真空度为1.0×10-2Torr制备之Pt披覆型电极之阳极放电效能为最高(在... 本实验使用磁控溅镀法制作高分子电解质燃料电池碳电极之Pt触媒颗粒层,并研究背景真空度及临场退火热处理等制程参数对Pt披覆型碳电极的影响.实验结果显示,在背景真空度为1.0×10-2Torr制备之Pt披覆型电极之阳极放电效能为最高(在负载为0.6 v的条件下,电流密度为306 mA/cm2),比商用碳电极的电流密度高25%. 展开更多
关键词 燃料电池 PEFC Pt触媒 奈米颗粒 碳电极 溅镀制程 放电效能 V-I曲线
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An experimental research on single discharge machining of insulating ceramics efficiently with high energy capacitor 被引量:4
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作者 JI RenJie LIU YongHong +3 位作者 ZHANG YanZhen ZHANG HaiFeng LI XiaoPeng DONG Xin 《Science China(Technological Sciences)》 SCIE EI CAS 2011年第6期1537-1545,共9页
Insulating ceramics are applied to modern manufacturing industries for their improved material properties.But they are the difficult-to-machine materials because of their high rigidity,high brittleness and non-electri... Insulating ceramics are applied to modern manufacturing industries for their improved material properties.But they are the difficult-to-machine materials because of their high rigidity,high brittleness and non-electrical conductivity.A new method which employs a high energy capacitor for electric discharge machining of insulating ceramics efficiently is presented in this paper,and the single discharge experiments have been carried out.The process uses the high voltage,large capacitor and high discharge energy,it is able to effectively machine insulating ceramics,and the single discharge crater volume of insulating ceramics can reach 17.63 mm3.The effects of polarity,peak voltage,capacitance,current-limiting resistance,tool electrode feed,tool electrode section area and assisting electrode thickness on the process performance such as the single discharge crater volume,the tool wear ratio and the assisting electrode wear ratio have been investigated.The microstructure of the discharge crater is examined with a scanning electron microscope(SEM).The results show that the discharge craters have sputtering appearance,the insulating ceramic materials are mostly removed by spalling,in the center region of the discharge some materials are removed by melting and vaporization,and the material removal is enhanced with the machining parameters increasing. 展开更多
关键词 EDM insulating ceramics single pulse high energy high efficiency
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Reversible LiOH chemistry in Li-O_(2)batteries with free-standing Ag/δ-MnO_(2)nanoflower cathode
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作者 Linna Dai1 Qing Sun +7 位作者 Yuqing Yao Huanhuan Guo Xiangkun Nie Jianwei Li Pengchao Si Jingyu Lu Deping Li Lijie Ci 《Science China Materials》 SCIE EI CAS CSCD 2022年第6期1431-1442,共12页
The low energy efficiency and poor cycle stability arising from the high aggressivity of discharge products toward organic electrolytes limit the practical applications of Li-O_(2)batteries(LOBs).Compared with the typ... The low energy efficiency and poor cycle stability arising from the high aggressivity of discharge products toward organic electrolytes limit the practical applications of Li-O_(2)batteries(LOBs).Compared with the typical discharge product Li_(2)O_(2),LiOH shows better chemical and electrochemical stability.In this study,a free-standing cathode composed of hydrangea-likeδ-MnO_(2)with Ag nanoparticles(NPs)embedded in carbon paper(CP)(Ag/δ-MnO_(2)@CP)is fabricated and used as the catalyst for the reversible formation and decomposition of LiOH.The possible discharge mechanism is investigated by in situ Raman measurement and density functional theory calculation.Results confirm thatδ-MnO_(2)dominantly catalyzes the conversion reaction of discharge intermediate LiO_(2)*to LiOH and that Ag particles promote its catalytic ability.In the presence of Ag/δ-MnO_(2)@CP cathode,the LOB exhibits enhanced specific capacity and a high discharge voltage plateau under humid O_(2)atmosphere.At a current density of 200 mA g^(−1),the LOB with the Ag/δ-MnO_(2)@CP cathode presents an overpotential of 0.5 V and an ultra-long cycle life of 867 cycles with a limited specific capacity of 500 mA h g^(−1).This work provides a fresh view on the role of solid catalysts in LOBs and promotes the development of LOBs based on LiOH discharge product for practical applications. 展开更多
关键词 Li-O_(2)batteries Ag nanoparticles δ-MnO_(2) reversible LiOH in situ Raman
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Achieving superior high-temperature sodium storage performance in a layered potassium vanadate
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作者 Dong Chen Yafei Cheng +3 位作者 Hongge Pan Wenping Sun Hongbo Geng Xianhong Rui 《Science China Materials》 SCIE EI CAS CSCD 2022年第3期646-652,共7页
The high-temperature sodium-ion batteries(SIBs)used for large-scale energy storage have attracted extensive attention in recent years.However,the development of SIBs is still hampered mainly by their poor charge/disch... The high-temperature sodium-ion batteries(SIBs)used for large-scale energy storage have attracted extensive attention in recent years.However,the development of SIBs is still hampered mainly by their poor charge/discharge efficiency and stability,necessitating the search for appropriate electrodes.A simple potassium ion intercalation process is used herein to obtain the potassium vanadate(KV_(3)O_(8))nanobelts.When serving as the anode for SIBs at a high temperature(60℃),the KV_(3)O_(8) nanobelts display superior sodium storage performance with a high capacity of 414mA h g^(-1) at 0.1Ag^(-1),remarkable rate capability(220mAh g^(-1) at 20Ag^(-1)),and super-long cycle life(almost no capacity fading at 10Ag^(-1) over 1000 cycles).Moreover,the ex-situ X-ray powder diffraction reveals no structural changes throughout the whole charge/discharge process,which further confirms their outstanding stability,indicating KV_(3)O_(8) nanobelts are a promising candidate for high-temperature SIBs. 展开更多
关键词 sodium-ion battery high-temperature performance layered potassium vanadate
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