化工学报 ›› 2020, Vol. 71 ›› Issue (5): 2190-2201.DOI: 10.11949/0438-1157.20191026
收稿日期:
2019-09-11
修回日期:
2020-01-07
出版日期:
2020-05-05
发布日期:
2020-05-05
通讯作者:
李双喜
作者简介:
李世聪(1992—),男,博士研究生,基金资助:
Shicong LI1(),Caifu QIAN1,Shuangxi LI1(),Lian CHEN2
Received:
2019-09-11
Revised:
2020-01-07
Online:
2020-05-05
Published:
2020-05-05
Contact:
Shuangxi LI
摘要:
研究了油气两相动压密封的动态特性。在可压缩流体雷诺方程中引入油气两相流体物性,建立油气两相流体的稳态和动态雷诺方程;考虑密封变形对流体膜的影响,采用热流固耦合方法并用有限元法进行求解;分析操作参数(油气比、转速和压差)对油气两相动压密封动态性能的影响。研究结果表明:油气两相流体的黏度较大,使密封具有更大的刚度系数、阻尼系数及更好的动态性能;密封端面变形减小了密封的刚度系数,增大了阻尼系数,且影响程度最大为16.9%和31.2%,对动态性能影响较大。高转速使刚度系数和阻尼系数增加,有利于密封的动态性能;而大压差使刚度系数增大、阻尼系数减小,不利于密封的动态性能;因此油气两相动压密封适用于高转速、低压差的油气润滑工况。
中图分类号:
李世聪, 钱才富, 李双喜, 陈炼. 油气两相动压密封动态特性的热流固耦合研究[J]. 化工学报, 2020, 71(5): 2190-2201.
Shicong LI, Caifu QIAN, Shuangxi LI, Lian CHEN. Study of thermal-fluid-solid coupling on dynamic characteristics of oil-gas miscible backflow pumping seal[J]. CIESC Journal, 2020, 71(5): 2190-2201.
参数 | 数值 | 参数 | 数值 |
---|---|---|---|
动环端面内径 rin,R / mm | 33.25 | O形圈槽外径 r1 / mm | 41.5 |
动环端面外径 rout,R / mm | 43 | 静环外径 r2 / mm | 45 |
静环端面内径 rin,S / mm | 35.5 | 轴径 r3 / mm | 30 |
静环端面外径 rout,S / mm | 42 | 动环尾部外径 r4 / mm | 34 |
螺旋槽根径 rg / mm | 40 | 动环尾部倾斜角 σ /(°) | 65 |
螺旋角 α /(°) | 15 | 平衡半径 rb / mm | 36.75 |
槽深 hg / μm | 5 | 动环厚度 δR / mm | 13 |
槽堰比 γ | 0.5 | 静环厚度 δS / mm | 15 |
槽数 Ng | 12 | 油气比 c | 0.1 |
表1 油气两相动压密封结构参数
Table 1 Structural parameters of sealing end face
参数 | 数值 | 参数 | 数值 |
---|---|---|---|
动环端面内径 rin,R / mm | 33.25 | O形圈槽外径 r1 / mm | 41.5 |
动环端面外径 rout,R / mm | 43 | 静环外径 r2 / mm | 45 |
静环端面内径 rin,S / mm | 35.5 | 轴径 r3 / mm | 30 |
静环端面外径 rout,S / mm | 42 | 动环尾部外径 r4 / mm | 34 |
螺旋槽根径 rg / mm | 40 | 动环尾部倾斜角 σ /(°) | 65 |
螺旋角 α /(°) | 15 | 平衡半径 rb / mm | 36.75 |
槽深 hg / μm | 5 | 动环厚度 δR / mm | 13 |
槽堰比 γ | 0.5 | 静环厚度 δS / mm | 15 |
槽数 Ng | 12 | 油气比 c | 0.1 |
属性 | 动环 | 静环 |
---|---|---|
材料 | 18Cr2Ni4WA | M234 |
弹性模量 E / GPa | 207 | 11.3 |
泊松比 u | 0.273 | 0.27 |
热导率 λ/(W·m-1·K-1) | 35.58 | 140 |
比热容cp/(J·kg-1·K-1) | 499 | 690 |
热膨胀系数 αl /K-1 | 12.37×10-6 | 5.5×10-6 |
密度 ρ/(kg·m-3) | 7910 | 2400 |
表3 密封环材料属性
Table 3 Material properties of sealing ring
属性 | 动环 | 静环 |
---|---|---|
材料 | 18Cr2Ni4WA | M234 |
弹性模量 E / GPa | 207 | 11.3 |
泊松比 u | 0.273 | 0.27 |
热导率 λ/(W·m-1·K-1) | 35.58 | 140 |
比热容cp/(J·kg-1·K-1) | 499 | 690 |
热膨胀系数 αl /K-1 | 12.37×10-6 | 5.5×10-6 |
密度 ρ/(kg·m-3) | 7910 | 2400 |
参数 | 数值 | 参数 | 数值 |
---|---|---|---|
轴承腔内压力pout/MPa | 0.151 | 气体密度 ρgas/(kg·m-3) | 1.1774 |
轴承腔外压力 pin/MPa | 0.101 | 润滑油密度 ρoil/(kg·m-3) | 840 |
转速 ω / (r·min-1) | 8000 | 气体黏度 μgas/(Pa·s) | 1.8462×10-5 |
操作温度 T / K | 300 | 润滑油黏度 μoil/(Pa·s) | 4840×10-5 |
表2 油气两相动压密封操作参数
Table 2 Operating parameters of sealing end face
参数 | 数值 | 参数 | 数值 |
---|---|---|---|
轴承腔内压力pout/MPa | 0.151 | 气体密度 ρgas/(kg·m-3) | 1.1774 |
轴承腔外压力 pin/MPa | 0.101 | 润滑油密度 ρoil/(kg·m-3) | 840 |
转速 ω / (r·min-1) | 8000 | 气体黏度 μgas/(Pa·s) | 1.8462×10-5 |
操作温度 T / K | 300 | 润滑油黏度 μoil/(Pa·s) | 4840×10-5 |
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