Deformation analysis of rubber seal assembly considering uncertainties in mechanical properties

2019 ◽  
Vol 33 (7) ◽  
pp. 3345-3353 ◽  
Author(s):  
Seung Pyo Lee ◽  
Ki Weon Kang
2018 ◽  
Vol 49 (8) ◽  
pp. 1036-1060 ◽  
Author(s):  
S Jothibasu ◽  
S Mohanamurugan ◽  
R Vijay ◽  
D Lenin Singaravelu ◽  
A Vinod ◽  
...  

Hybrid polymeric composites are gaining important consideration with versatile applications due to their good mechanical properties. The present study is an attempt to evaluate the hybridization effects of different laminate stacking sequence involving areca sheath fiber/jute fiber/glass-woven fabric through the study of mechanical properties of four different resulting composites. The fibers were alkali-treated and were used in composites fabrication that was done using the hand lay-up method. This assessment of mechanical properties and study of fractured surfaces indicated a significant improvement in mechanical properties of the composites with jute fiber as intermittent layers, areca sheath fiber as a core layer, and glass fabrics as skin layer reinforced epoxy composites. An attempt to prove the application suitability of “L” frame for flower stand application was fabricated using the best mechanical behavior performer composite, and the ANSYS (deformation) analysis was also performed.


e-Polymers ◽  
2015 ◽  
Vol 15 (5) ◽  
pp. 293-299
Author(s):  
Jianbing Sang ◽  
Sufang Xing ◽  
Hongyan Tian ◽  
Jingyuan Wang ◽  
Jing Zhou

AbstractPolymer membrane structures with voids can be fractured due to larger deformation and stress concentration with the effect of an externally applied load, which can lead to failure localization and crack propagation. With the modified constitutive model from Gao, finite deformation analysis of a polymer membrane containing a void has been researched. By deducing the basic governing equation for solving the problem, the paper figures out the stress distribution of different constitutive parameters and discusses the effects on membrane deformation by different parameters and the reasons for the failure of the membrane. The results show that the constitutive parameter n has a major impact on the mechanical properties of a polymer membrane with a void, which provides a reference for the design of polymer membranes.


2021 ◽  
Author(s):  
Maoxian Xiong ◽  
Junfeng Xie ◽  
Hongtao Liu ◽  
Jingcheng Zhang ◽  
Weilong Liu ◽  
...  

Abstract In view of the high shut in pressure of gas wells in Kuqa mountain front ultra-high pressure block where the highest shut in pressure of KeS X is 115MPa, the 105MPa casing head currently used can not meet the shut in demanding, so the risk of well control is high. A new 140MPa mandrel casing head was developed. Its sealing structure adopts the form of X Metal sealing at the upper end and rubber seal at the lower end, which has the characteristics of high pressure bearing and reliable sealing performance. The structural design verification of the 140 MPa mandrel casing head was conducted by finite element analysis(FEA) of the structural strength and sealing performance of the key components of the casing head, including casing head body and hanger. Then indoor evaluation tests were carried out on the material, strength and sealing performance of the casing head and hanger, as well as the overall structure, and the 140MPa mandrel casing is completed Finally, the quality control level of 140MPa mandrel casing head product has reached the requirements of ultra-high pressure field working condition through field trial in ultra-high pressure gas well, and it has the conditions for promotion and application in other ultra-high pressure gas wells. The results of and FEA show that the maximum bearing capacity of the mandrel type casing head is 793t, and no yielding occurs under the conditions of bearing capacity of 473t, external pressure of 140MPa and safety factor of 1.35; the maximum internal pressure resistance of the hanger is 212MPa, and no yielding occurs under the conditions of bearing capacity of 200t, internal pressure of 140MPa and safety factor of 1.35. The indoor evaluation test shows that: ① there is no sulfide stress cracking (SSC) and hydrogen induced cracking (HIC) in the casing head body (0Cr18Ni9) and hanger (718); ② there is no leakage in the casing head body under 210MPa clean water and hanger under 140MPa nitrogen; ③ there is no yield in the casing head step and hanger under 673t pressure in the mandrel type casing head. The field test shows that the test pressure of the mandrel type casing head is 117MPa and it is qualified under 280t setting and hanging tonnage. At present, the 140 MPa mandrel casing head has been successfully used in Kuqa mountain for 15 wells, which provides a reliable guarantee for the safety production of ultra-high pressure gas wells. The 140MPa mandrel casing head developed in this paper has the following three innovations: ① adopt the structure without top wire, fix the wear-resistant sleeve by installing the top wire flange during drilling, and avoid the leakage caused by the top wire hole in the later production; ② adopt the form of upper metal seal + lower X-type rubber seal in the sealing structure of hanger, which can not only avoid the metal seal of hanger during the lowering process The seal assembly is damaged and fails, and in case of unqualified pressure test, the metal seal assembly at the upper end of the hanger can be replaced; ③ a limited step is designed at the contact part between the metal seal assembly at the upper end of the mandrel hanger and the casing head body, which can transfer the excess pressure to the casing head body, so as to avoid the failure of the rubber seal and bearing step at the lower part of the hanger.


2004 ◽  
Vol 820 ◽  
Author(s):  
Maksim V. Kireitseu ◽  
Liya Bochkaryova

AbstractIn our laboratory, we developed a simple method for measuring the mechanical properties of single nanotubes and modeling its mechanical properties by rheological analysis. The technique involves depositing nanotubes from a suspension in a suitable liquid onto well- polished alumina ultrafiltration membranes with a pore size of about 200 nm. Rheological models of the composite systems have been proposed and confirmed by in-situ experiments at AFM indentation.


2011 ◽  
Vol 1 (32) ◽  
pp. 68 ◽  
Author(s):  
Wenbai Liu ◽  
Yibing Deng ◽  
Rong Guo

The pile side soil deformation analysis and meso-observation were conducted for revealing the meso-mechanism of lateral bearing pile with practical significance. Lateral cyclic load tests were carried out on full model and semispatial mode single piles embedded in fine sand to study the behaviour of pile side soil. Through the digital photography and microscopic meso-observation images on the semispatial model test, digital photography for the deformation of soil analysis, and microscopic meso-observation images for the meso-structure analysis, carry out the works of soil meso-mechanical properties and its associated research, test method of macro and meso-analysis was proposed. Through non-marking points digital photogrammetry of deformation measurement system, the biggest shearing strain, volumetric strain and displacement vector distribution of pile the surrounding fine sand of the laterally loading on experiments of semispatial model was analysed, depends on this determination the shearing failure area and meso-observation point. The applied MiVnt image analysis system has processed the meso-observation images of soil structure, has sum up and analysed the change of meso-parameters, numbers of particles, total area of particles, voil ratio e, voil ratio increment , major axis mean of particles, minor axis mean of particles, eccentricity mean of particles, particle size, particle direction. This is an effective method of analysis, through deformation analysis and meso-structure analysis of soil structure on the semispatial model test, studing the macro-and meso-mechanical properties and its correlation.


2019 ◽  
Vol 9 (18) ◽  
pp. 3848 ◽  
Author(s):  
Sungwook Kang ◽  
Jaewoong Kim ◽  
Youngjae Jang ◽  
Kwangjin Lee

With the rise of electric vehicles, the use of battery modules, which are key units that drive vehicles, is increasing. The battery housing is the final form of a battery system mounted on electric vehicles, and is generally made of aluminum alloys, located at the bottom of the vehicle. The aluminum housing has a special shape to accommodate the battery module and is produced by welding extruded panels. This study applied friction stir welding (FSW) to weld 2.5 mm thin aluminum plates in order to improve the weldability and productivity. To increase productivity, we compared the mechanical properties after performing experiments under various FSW conditions. As a result, it was possible to derive speed-enabling welding conditions that can improve productivity without decreasing tensile strength. Deformation occurred in the structure during welding, causing gaps in the structure. Since these gaps have a significant influence on the degradation of mechanical properties after welding, the welding deformation at each step of welding must be calculated and reflected in the process. This study used the inherent strain method to calculate the deformation of each step of welding to apply automatic welding, and reduced the analysis time to 1/30 compared to the thermal elasto-plastic analysis method. Finally, this study verified the validity of the analysis method by comparing the experimental results with the numerical results using the inherent strain method.


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