通过简易的无焰燃烧法合成了LiMn2O4、LiNi0.08Mn1.92O4和LiNi0.08Cu0.05Mn1.87O43种正极材料。利用XRD、SEM、恒电流充放电测试等手段对合成材料的结构、形貌和电化学性能进行了表征。结果表明,所制备的3种正极材料均为立方尖晶石结构;...通过简易的无焰燃烧法合成了LiMn2O4、LiNi0.08Mn1.92O4和LiNi0.08Cu0.05Mn1.87O43种正极材料。利用XRD、SEM、恒电流充放电测试等手段对合成材料的结构、形貌和电化学性能进行了表征。结果表明,所制备的3种正极材料均为立方尖晶石结构;Ni-Cu共掺杂提高了LiNi0.08Cu0.05Mn1.87O4材料的晶体结构稳定性,表现出比LiNi0.08Mn1.92O4和LiMn2O4材料较好的倍率性能和循环寿命。在室温和1 C倍率下,LiNi0.08Cu0.05Mn1.87O4样品的首次比容量为104.7 m A·h/g,循环200次后的容量保持率为81.38%;在较高的倍率5 C循环1000次后,容量保持率为68.23%;即使在高温55℃和1 C倍率下,仍可获得较高的首次放电比容量,为110.8 m A·h/g,200次循环后的容量保持率为56.23%。CV和EIS测试结果表明,LiNi0.08Cu0.05Mn1.87O4具有较好的循环可逆性和较小的电荷转移阻抗。展开更多
Existing fire test methods reply on measurement of the energy released rate to identify the combustion properties of a material. However, they are inadequate when assessing combustion characteristics of a composite ma...Existing fire test methods reply on measurement of the energy released rate to identify the combustion properties of a material. However, they are inadequate when assessing combustion characteristics of a composite material characterized by vertical flame spread and different inside/outside combustion behaviors. In addition, major factors that affect the flame spread outside the building include the combustion characteristics of materials used as well as air flow around a skyscraper. However, since it is highly difficult to analyze and forecast the air flow from a fire engineering viewpoint, an investigation of the flame spread characteristics of exterior walls of a building depends primarily on the combustion characteristics of materials. Hence, this study examined, using ISO 13785-2 testing method, the temperature changes and vertical flame spread behaviors of one of the finishing materials for exterior walls--(generic & fire-resistant) aluminium panels by a real-scale combustion experiment. According to the results of real-scale experiment, the maximum heat temperature of 987.7 ℃ was recorded seven minutes after the fire test was initiated while the fire-resistant aluminium panels showed the maximum heat temperature of 850.2℃ after exposed for approximately 12 min. The vertical flame spread properties put more emphasis on the time required to reach the maximum temperature rather than its magnitude and there was a five minutes difference between the materials.展开更多
文摘通过简易的无焰燃烧法合成了LiMn2O4、LiNi0.08Mn1.92O4和LiNi0.08Cu0.05Mn1.87O43种正极材料。利用XRD、SEM、恒电流充放电测试等手段对合成材料的结构、形貌和电化学性能进行了表征。结果表明,所制备的3种正极材料均为立方尖晶石结构;Ni-Cu共掺杂提高了LiNi0.08Cu0.05Mn1.87O4材料的晶体结构稳定性,表现出比LiNi0.08Mn1.92O4和LiMn2O4材料较好的倍率性能和循环寿命。在室温和1 C倍率下,LiNi0.08Cu0.05Mn1.87O4样品的首次比容量为104.7 m A·h/g,循环200次后的容量保持率为81.38%;在较高的倍率5 C循环1000次后,容量保持率为68.23%;即使在高温55℃和1 C倍率下,仍可获得较高的首次放电比容量,为110.8 m A·h/g,200次循环后的容量保持率为56.23%。CV和EIS测试结果表明,LiNi0.08Cu0.05Mn1.87O4具有较好的循环可逆性和较小的电荷转移阻抗。
文摘Existing fire test methods reply on measurement of the energy released rate to identify the combustion properties of a material. However, they are inadequate when assessing combustion characteristics of a composite material characterized by vertical flame spread and different inside/outside combustion behaviors. In addition, major factors that affect the flame spread outside the building include the combustion characteristics of materials used as well as air flow around a skyscraper. However, since it is highly difficult to analyze and forecast the air flow from a fire engineering viewpoint, an investigation of the flame spread characteristics of exterior walls of a building depends primarily on the combustion characteristics of materials. Hence, this study examined, using ISO 13785-2 testing method, the temperature changes and vertical flame spread behaviors of one of the finishing materials for exterior walls--(generic & fire-resistant) aluminium panels by a real-scale combustion experiment. According to the results of real-scale experiment, the maximum heat temperature of 987.7 ℃ was recorded seven minutes after the fire test was initiated while the fire-resistant aluminium panels showed the maximum heat temperature of 850.2℃ after exposed for approximately 12 min. The vertical flame spread properties put more emphasis on the time required to reach the maximum temperature rather than its magnitude and there was a five minutes difference between the materials.