In order to reduce greenhouse gas emission and urban heat island mitigation, pure and titanium(Ti)-doped Cr2O3 cool pigments were prepared via the thermal decomposition of CrOOH. The result reveals that the pure Cr2...
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In order to reduce greenhouse gas emission and urban heat island mitigation, pure and titanium(Ti)-doped Cr2O3 cool pigments were prepared via the thermal decomposition of CrOOH. The result reveals that the pure Cr2O3 pigment presents both a high near-infrared reflectance and excellent yellowish-green color. Meanwhile, titanium was doped to improve the NIR reflectance and strengthen the color. The color of the designed pigments was brighter, and most importantly, the NIR reflectance increased from 84.04% to 91.25% with increasing Ti content from 0 to 0.006% (mole fraction). However, excessive doping of Ti4+ for Cr3+ in Cr2O3 (x(Ti)≥0.008%) decreased the NIR reflectance. One possible reason is that the conductivity type of the Cr2?xTixO3+δ changed from p-type conduction to n-type conduction with increasing Ti content, accompanied by the change of the electrical resistivity and the NIR reflectance. The prepared yellowish-green Cr2O3 pigments have a great potential for extensive applications in construction and military.
采用综合热分析仪研究不同氧气浓度下K2CO3催化无烟煤和石墨燃烧的特性,考察了氧气浓度对催化燃烧机制的影响.结果表明,K2CO3提高了燃烧反应和氧气扩散速率,但对燃烧速率的提高幅度大于对氧气扩散速率提高幅度,延长了无烟煤燃烧过程的平台时间.氧气浓度由21%增加到100%时,K2CO3催化无烟煤着火温度降低幅度由37.7℃增至78.1℃,催化石墨着火温度降低幅度由204.8℃增至233.6℃.煤燃烧初期K2CO3使燃烧活化能下降,氧气浓度高于40%时,燃烧由扩散向反应控制转变;燃烧后期活化能低于40 k J/mol,燃烧受扩散控制.石墨在燃烧初期K2CO3使燃烧活化能下降,但氧气浓度增加并未改变燃烧控制步骤,燃烧受反应控制;燃烧后期氧气浓度由21%增加到100%时,K2CO3催化石墨燃烧活化能由39 k J/mol增至110 k J/mol,燃烧由扩散控制向反应控制转变.
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