氣液增力器 的英文怎麼說

中文拼音 [zēng]
氣液增力器 英文
air over hydraulic intensifier
  • : Ⅰ名詞1 (氣體) gas 2 (空氣) air 3 (氣息) breath 4 (自然界冷熱陰晴等現象) weather 5 (氣味...
  • : 名詞(液體) liquid; fluid; juice
  • : Ⅰ名1 (力量; 能力) power; strength; ability; capacity 2 [物理學] (改變物體運動狀態的作用) forc...
  • : 名詞1. (器具) implement; utensil; ware 2. (器官) organ 3. (度量; 才能) capacity; talent 4. (姓氏) a surname
  1. In pumping fluid with gas, pressure boost can be improved by enhancing the pump rotation speed, thereby improving the performance of the pump to a certain degree ; when the gas content is constant, by increasing the inlet pressure, the pressure boost can be enhanced and the pump efficiency be improved remarkably ; when the gas content is rather high, there will be a problem of matching between the gas pressure and the fluid pressure ; the performance of the multiphase pump can also be improved by means of rational design of buffer vessel and homogenizer

    試驗分析認為,混輸工況下,提高泵轉速可以提高壓,在一定程度上能改善多相泵的工作性能;含率一定時,加進口壓,可使多相泵壓值大,泵效明顯加,最大含率點后移,但含率很高時,存在相匹配問題;改進緩沖罐和均化的設計,有利於互相夾帶,避免囊產生,可改善多相泵的輸送性能。
  2. As ammonia built up in the water gas purification system reacts with a part of condensate on the inner wall of the heat exchanger tube passes, and the salt solution formed cools down and crystallizes in the tube passes, the resistance in the shift conversion section increases exceedingly

    摘要由於水煤凈化系統積累的氨與部分冷凝水在換熱管程內壁反應形成的鹽溶在管程內冷卻結晶,造成變換工序阻異常大。
  3. The condensation heat - exchange characteristic of a separate - type heat - pipe was studied on a 1 : 1 model. the heat pipe is heated by electricity, and working fluid is distilled water, and it is cooled by air. the experimental results show that, ( 1 ) when charging liquid ratio is 45 %, condensation heat - exchange coefficient reaches to maxium ; ( 2 ) when there is not non - condensing gas, the coeffcient decreases a little with the increase of vapour pressure, and it decreases by 9. 5 % when the pressure increases from 0. 16mpa to 0. 36mpa ; ( 3 ) when there is non - condensing gas, the coefficient decreases a little, but when the gas is discharged by an exhaust value, it can be improved, when the volume content of the gas is 2. 5 %, it can increased by 22 % ; ( 4 ) the effect of the non - condensing gas on the coefficient decreases with the increase of the pressure, and when the volume content of the gas is 5 % and the pressure increases from 0. 16mpa to 0. 36mpa, the coefficient increases by 6 %. the relative curves are given between condensation heat - exchange coefficient and air flowrate, charging liquid ratio and vapour pressure

    建立了空冷卻實驗臺,熱管的加熱方式為電加熱,工質為蒸餾水.在1 1模型上對分離式熱管管內凝結換熱特性、不凝性體對凝結換熱的影響及不凝性體的擴散規律進行了試驗,得出分離式熱管有一最佳充率,其值為45 %左右;凝結換熱系數隨著蒸汽壓加略有降低,在實驗的壓范圍內,降低了9 . 5 % ;不凝性體對分離式熱管的凝結換熱僅影響冷凝段下部較小部分,通過排閥排出不凝性體可有效地改善冷凝段下部的凝結換熱;隨著壓加,不凝性體對分離式熱管冷凝段的影響減少.這些結論可用於分離式熱管換熱的工程設計和控制
  4. Abstract : the condensation heat - exchange characteristic of a separate - type heat - pipe was studied on a 1 : 1 model. the heat pipe is heated by electricity, and working fluid is distilled water, and it is cooled by air. the experimental results show that, ( 1 ) when charging liquid ratio is 45 %, condensation heat - exchange coefficient reaches to maxium ; ( 2 ) when there is not non - condensing gas, the coeffcient decreases a little with the increase of vapour pressure, and it decreases by 9. 5 % when the pressure increases from 0. 16mpa to 0. 36mpa ; ( 3 ) when there is non - condensing gas, the coefficient decreases a little, but when the gas is discharged by an exhaust value, it can be improved, when the volume content of the gas is 2. 5 %, it can increased by 22 % ; ( 4 ) the effect of the non - condensing gas on the coefficient decreases with the increase of the pressure, and when the volume content of the gas is 5 % and the pressure increases from 0. 16mpa to 0. 36mpa, the coefficient increases by 6 %. the relative curves are given between condensation heat - exchange coefficient and air flowrate, charging liquid ratio and vapour pressure

    文摘:建立了空冷卻實驗臺,熱管的加熱方式為電加熱,工質為蒸餾水.在1 1模型上對分離式熱管管內凝結換熱特性、不凝性體對凝結換熱的影響及不凝性體的擴散規律進行了試驗,得出分離式熱管有一最佳充率,其值為45 %左右;凝結換熱系數隨著蒸汽壓加略有降低,在實驗的壓范圍內,降低了9 . 5 % ;不凝性體對分離式熱管的凝結換熱僅影響冷凝段下部較小部分,通過排閥排出不凝性體可有效地改善冷凝段下部的凝結換熱;隨著壓加,不凝性體對分離式熱管冷凝段的影響減少.這些結論可用於分離式熱管換熱的工程設計和控制
分享友人