Design of packing cup interference fit value of hypercompressors for low density polyethylene production

Da LEI, Xuehong LI, Yun LI, Xiwen REN

PDF(737 KB)
PDF(737 KB)
Front. Energy ›› 2019, Vol. 13 ›› Issue (1) : 107-113. DOI: 10.1007/s11708-017-0450-1
RESEARCH ARTICLE
RESEARCH ARTICLE

Design of packing cup interference fit value of hypercompressors for low density polyethylene production

Author information +
History +

Abstract

The hypercompressor is one of the core facilities in low density polyethylene production, with a discharge pressure of approximately 300 MPa. A packing cup is the basic unit of cylinder packing, assembled by the interference fit between an inner cup and an outer cup. Because the shrink-fitting prestresses the packing cup, serious design is needed to gain a favorable stress state, for example, a tri-axial compressive stress state. The traditional method of designing the interference fit value for packing cups depends on the shrink-fit theory for thick-walled cylinder subject to internal and external pressure. According to the traditional method, critical points are at the inner radii of the inner and external cup. In this study, the finite element method (FEM) has been implemented to determine a more accurate stress level of packing cups. Different critical points have been found at the edge of lapped sealing surfaces between two adjacent packing cups. The maximum Von Mises equivalent stress in a packing cup increases after a decline with the rise of the interference fit value. The maximum equivalent stress initially occurs at the bore of the inner cup, then at the edge of lapped mating surfaces, and finally at the bore of the outer cup, as the interference radius increases. The traditional method neglects the influence of axial preloading on the interference mating pressure. As a result, it predicts a lower equivalent stress at the bore of the external cup. A higher interference fit value accepted by the traditional method may not be feasible as it might already make packing cups yield at the edge of mating surfaces or the bore of the external cup. Along with fatigue analysis, the feasible range of interference fit value has been modified by utilizing FEM. The modified range tends to be narrower and safer than the one derived from the traditional method, after getting rid of shrink-fit values that could result in yielding in a real packing cup.

Keywords

interference fit value / packing cup / hypercompressor / finite element method (FEM)

Cite this article

Download citation ▾
Da LEI, Xuehong LI, Yun LI, Xiwen REN. Design of packing cup interference fit value of hypercompressors for low density polyethylene production. Front. Energy, 2019, 13(1): 107‒113 https://doi.org/10.1007/s11708-017-0450-1

References

[1]
Giacomelli E, Pratesi S, Fani R, Gimignani L. Improving availability of hypercompressors. In: ASME 2002 Pressure Vessels and Piping Conference. British Columbia, Canada, 2002, 71–82
[2]
Giacomelli E, Shi J X, Manfrone F. Considerations on design, operation and performance of hypercompressors. In: ASME 2010 Pressure Vessels and Piping Division/K-PVP Conference. Bellevue, USA, 2010, 31–40
[3]
Giacomelli E, Graziani F, Pratesi S, Campo N. Advanced design methods for packing cups of hypercompressor cylinders. In: ASME 2003 Pressure Vessels and Piping Conference. Cleveland, USA, 2003,15–27
[4]
Hanlon P C. Compressor Hand Book. New York: McGraw-Hill, 2001
[5]
Perez E H, Diab S, Dixon R D. Design of hyper compressor packing cup rings for optimum fatigue life. In: ASME 2006 Pressure Vessels and Piping/ICPVT-11 Conference. Vancouver, Canada, 2006, 85–89
[6]
Miller E S, Blanding J M. Strain gage and thermocouple measurements of hyper compressor packing cups to study pressure sealing performance. In: ASME 2015 Pressure Vessels and Piping Conference. Boston, USA, 2015
[7]
Lankenau H, Damberg S, Wagner B. Hyper compressor revamp procedures to extend MTBM. In: ASME 2015 Pressure Vessels and Piping Conference. Boston, USA, 2015
[8]
Giacomelli E, Graziani F, Pratesi S. Advanced design of packing and cylinders for hyper-compressors for LDPE production. In: ASME 2005 Pressure Vessels and Piping Conference. Fairfield, USA, 2005, 33–39
[9]
Zheng J Y, Dong, Sang Z F. Process Equipment Design. Beijing: Chemical Industry Press, 2011 (in Chinese)
[10]
Yu Y Z. Technical Manual of Positive Displacement Compressor. Beijing: China Machine Press, 2000
[11]
Campo N, Chiesi F. Improved design for hypercompressor packing cups. In: ASME 2007 Pressure Vessels and Piping Conference. San Antonio, USA, 2007, 115–122
[12]
Giacomelli E, Battagli P, Campo N, Graziani F. Autofrettaging procedures on LDPE hyper-compressor components. In: ASME 2006 Pressure Vessels and Piping/ICPVT-11 Conference. Vancouver, Canada, 2006, 47–56
[13]
Ni J J. Study on cracking reason and preventing measures of packing boxes used in the hypercompressor. Dissertation for the Doctorial Degree. Shanghai: East China University of Science and Technology, 2002 (in Chinese)

RIGHTS & PERMISSIONS

2017 Higher Education Press and Springer-Verlag Berlin Heidelberg
AI Summary AI Mindmap
PDF(737 KB)

Accesses

Citations

Detail

Sections
Recommended

/