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Thermo-Hydrodynamic Effect of Gas Split Floating Ring Seal with Rayleigh Step Grooves

The force equilibrium and moment equilibrium play a significant role on the sealing performance of gas split floating ring seals. A small deflection angle may generate seriously wear on sealing surface and cause seal failure. Therefore, the thermo-hydrodynamic lubrication analysis of gas split float...

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Autores principales: Bai, Shaoxian, Chu, Dongdong, Ma, Chunhong, Yang, Jing, Bao, Shiyi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10058922/
https://www.ncbi.nlm.nih.gov/pubmed/36984163
http://dx.doi.org/10.3390/ma16062283
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author Bai, Shaoxian
Chu, Dongdong
Ma, Chunhong
Yang, Jing
Bao, Shiyi
author_facet Bai, Shaoxian
Chu, Dongdong
Ma, Chunhong
Yang, Jing
Bao, Shiyi
author_sort Bai, Shaoxian
collection PubMed
description The force equilibrium and moment equilibrium play a significant role on the sealing performance of gas split floating ring seals. A small deflection angle may generate seriously wear on sealing surface and cause seal failure. Therefore, the thermo-hydrodynamic lubrication analysis of gas split floating ring seal with Rayleigh grooves is investigated considering the deflection angle and frictional heat of surface contact, which is beneficial to grasp the hydrodynamic characteristics and rules under high-temperature and high-speed conditions. Pressure and temperature distributions of sealing rings are numerically calculated for the cases with different deflection angle, rational speed, seal pressure and ambient temperature. Then, the hydrodynamic effect and sealing performance are analyzed. The obtained results show that, the surface Rayleigh step grooves do not present obvious hydrodynamic effect when split seal ring has no deflection. While, a significant hydrodynamic effect can be obtained when the split seal ring presents a deflection angle about dozens of micro radians. Here, a 10% increase of opening force is achieved when the deflection angle reaches 80 μrad in the case of speed 30,000 r/min and seal pressure 0.2 MPa. Moreover, the hydrodynamic effect becomes obvious with increasing deflection angle as well as rotational speed. Meanwhile, the growth of rotational speed results in an obvious increase of film temperature. The increase of ambient temperature has a significant influence on the decrease of leakage rate. When the ambient temperature increases from 340 K to 540 K, the leakage rate reduces exceeding 50%, however, it does not present obvious effect on the opening force. The proposed model has the potential to provide the theoretical basis and design guidance for surface grooves of gas split floating ring seal in the future.
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spelling pubmed-100589222023-03-30 Thermo-Hydrodynamic Effect of Gas Split Floating Ring Seal with Rayleigh Step Grooves Bai, Shaoxian Chu, Dongdong Ma, Chunhong Yang, Jing Bao, Shiyi Materials (Basel) Article The force equilibrium and moment equilibrium play a significant role on the sealing performance of gas split floating ring seals. A small deflection angle may generate seriously wear on sealing surface and cause seal failure. Therefore, the thermo-hydrodynamic lubrication analysis of gas split floating ring seal with Rayleigh grooves is investigated considering the deflection angle and frictional heat of surface contact, which is beneficial to grasp the hydrodynamic characteristics and rules under high-temperature and high-speed conditions. Pressure and temperature distributions of sealing rings are numerically calculated for the cases with different deflection angle, rational speed, seal pressure and ambient temperature. Then, the hydrodynamic effect and sealing performance are analyzed. The obtained results show that, the surface Rayleigh step grooves do not present obvious hydrodynamic effect when split seal ring has no deflection. While, a significant hydrodynamic effect can be obtained when the split seal ring presents a deflection angle about dozens of micro radians. Here, a 10% increase of opening force is achieved when the deflection angle reaches 80 μrad in the case of speed 30,000 r/min and seal pressure 0.2 MPa. Moreover, the hydrodynamic effect becomes obvious with increasing deflection angle as well as rotational speed. Meanwhile, the growth of rotational speed results in an obvious increase of film temperature. The increase of ambient temperature has a significant influence on the decrease of leakage rate. When the ambient temperature increases from 340 K to 540 K, the leakage rate reduces exceeding 50%, however, it does not present obvious effect on the opening force. The proposed model has the potential to provide the theoretical basis and design guidance for surface grooves of gas split floating ring seal in the future. MDPI 2023-03-12 /pmc/articles/PMC10058922/ /pubmed/36984163 http://dx.doi.org/10.3390/ma16062283 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Bai, Shaoxian
Chu, Dongdong
Ma, Chunhong
Yang, Jing
Bao, Shiyi
Thermo-Hydrodynamic Effect of Gas Split Floating Ring Seal with Rayleigh Step Grooves
title Thermo-Hydrodynamic Effect of Gas Split Floating Ring Seal with Rayleigh Step Grooves
title_full Thermo-Hydrodynamic Effect of Gas Split Floating Ring Seal with Rayleigh Step Grooves
title_fullStr Thermo-Hydrodynamic Effect of Gas Split Floating Ring Seal with Rayleigh Step Grooves
title_full_unstemmed Thermo-Hydrodynamic Effect of Gas Split Floating Ring Seal with Rayleigh Step Grooves
title_short Thermo-Hydrodynamic Effect of Gas Split Floating Ring Seal with Rayleigh Step Grooves
title_sort thermo-hydrodynamic effect of gas split floating ring seal with rayleigh step grooves
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10058922/
https://www.ncbi.nlm.nih.gov/pubmed/36984163
http://dx.doi.org/10.3390/ma16062283
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