oxygen partial pressure中文什么意思
- 氧分压力
- oxygen: n. 【化学】氧,氧气。
- partial pressure: 【物理学】分压力。
- alveolar oxygen partial pressure: 肺泡氧分压
例句与用法
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- Two types of internal oxidation techniques were adopted , namely internal oxidation under nitrogen protect and new type vacuum internal oxidation in the present study . both techniques can achieve the oxygen partial pressure that the internal oxidation reaction of cu - al alloy can take place
本文采用的两种内氧化工艺,即氮气保护下的内氧化和新型真空内氧化工艺,都可以满足cu - al合金发生内氧化的气氛条件。 - Methods : a self - made sensing needle was used to measure calcium ion concentrations of dachangshu ( bl25 ) , ganshu ( bli8 ) and guangyuanshu ( bl26 ) and their corresponding non - acupoints in 8 sheep ; oxygen partial pressure of ganshu ( bl18 ) and housanli ( ex ) and their corresponding non - acupoints were also observed
方法:利用自制的传感针,在体监测8只山羊的大肠俞、肝俞和关元俞及其对应的非穴位点的钙离子浓度;并监测肝俞和后三里及其对应非穴位点的氧分压。 - Begin with the comparation of two widely used methods producing the strontium titanate , the oxalate decomposition method shows its advantage hi the microstructure and future performance . the effect of caco3 is studied , and so is the effect of the donor dopant , such as nb2o5 , y2o3 and la2o3 . the dopant of tio2 is also considered , which involve ti / sr ratio , sintering temperature , oxygen partial pressure , donor dopant , grain growth and future electric performance
从对比草酸盐分解法和固相合成法这两种制备srtio _ 3主晶相的方法开始,在予合成料的制备过程中分析了施主nb _ 2o _ 5 、 y _ 2o _ 3 、 la _ 2o _ 3以及caco _ 3所产生的影响;在tio _ 2掺杂的问题上,综合考虑了ti / sr比、烧结温度、氧分压、施主掺杂、晶粒的微观生长与成瓷后的元件宏观电性能等之间的相互关系。 - Terrestrial plants are classified into three major photosynthetic types , namely , c3 , c4 and crassulacean acid metabolism ( cam ) plants , according to the mechanism of their photosynthetic carbon assimilation . c4 plants have co2 concentrating mechanism and higher photosynthetic efficiency than c3 plants , especially under high light intensity , high temperature , high oxygen partial pressure and drought conditions
本研究利用c _ 3植物、 c _ 4植物、旱稻与稗草等的杂交后代的材料,进行光合速率的测定,进一步分析植株在光能吸收传递、气孔调节、羧化反应等生理特性,研究高光效的生理机制。