scholarly journals Modeling of pvT behavior of semi-crystalline polymer based on the two-domain Tait equation of state for injection molding

2019 ◽  
Vol 183 ◽  
pp. 108149 ◽  
Author(s):  
Jian Wang ◽  
Christian Hopmann ◽  
Mauritius Schmitz ◽  
Tobias Hohlweck ◽  
Jens Wipperfürth
1998 ◽  
Vol 103 (5) ◽  
pp. 3080-3080
Author(s):  
Bruce Hartmann ◽  
Gilbert F. Lee ◽  
Edward Balizer

2016 ◽  
Vol 139 (2) ◽  
Author(s):  
Scott Bair ◽  
Mark Baker ◽  
David M. Pallister

A fixture was fabricated for the purpose of restraining the expansion of an existing metal bellows piezometer so that a refrigerant and oil mixture can be admitted under pressure. Measurements on a polyol ester (POE) with 9.2 wt.% of R134a show that the addition of refrigerant slightly increases compressibility. The previously reported reduction in compressibility (increase in bulk modulus) by Tuomas and Isaksson (2006, “Compressibility of Oil/Refrigerant Lubricants in Elasto-Hydrodynamic Contacts,” ASME J. Tribol., 128(1), pp. 218–220) of an ISO 68 POE when mixed with R134a cannot be supported by precise measurements of the volume compression. The increased compressibility found by Comuñas and co-workers (2002, “High-Pressure Volumetric Behavior of x 1, 1, 1, 2-Tetrafluoroethane + (1 − x) 2, 5, 8, 11, 14-Pentaoxapentadecane (TEGDME) Mixtures,” J. Chem. Eng. Data, 47(2), pp. 233–238) is the correct trend. The Tait equation of state (EoS) has been fitted to the data for both the neat POE and its 9.2% by weight mixture with refrigerant. The usual problem was encountered for the mixture with the Tait EoS at low pressure where the compressibility becomes greater than predicted due to proximity to the vapor dome. The measured relative volumes of the mixture can be used to collapse the viscosity to a master curve when plotted against the Ashurst–Hoover thermodynamic scaling parameter. The thermodynamic scaling interaction parameter is approximately the same as for the neat oil.


2007 ◽  
Author(s):  
Nadia Brahmia ◽  
Matthieu Zinet ◽  
M’hamed Boutaous ◽  
Patrice Chantrenne ◽  
Patrick Bourgin ◽  
...  

2012 ◽  
Vol 80 ◽  
pp. 96-101
Author(s):  
Erik P. Simon ◽  
Moritz Fröhlich ◽  
Ch. Kallmayer ◽  
K. D. Lang

This work presents a polymer based force-fit interconnection module (Click-Bond) that can be used to establish reliable electrical and mechanical interconnections between electronic components and textile circuit boards at room temperature. It is an extremely fast and cost-efficient process that is able to bring smart textile applications into the mass market. The semi-crystalline polymer POM-C is selected as material. It has good physical properties and can be used in injection molding. After the design is made mechanical experiments are performed to analyze the maximum forces and stress relaxation of the modules. Additionally, the compressibility of fabrics is analyzed to be able to design the module to apply a certain pressure. Finally, a multi-terminal board is presented that allows to easily integrate more complex electronics boards into smart textiles.


2020 ◽  
Vol 2020 ◽  
pp. 1-8
Author(s):  
Shaofei Jiang ◽  
Taidong Li ◽  
Xinxin Xia ◽  
Xiang Peng ◽  
Jiquan Li

External gas-assisted injection molding (EGAIM) has been used to reduce the sink marks of amorphous polymer products, but that of crystalline polymer products has not yet been reported. EGAIM of a crystalline polymer product was investigated in this study, and the influences of process parameters on the sink marks were discussed based on experiments. An isotactic polypropylene (iPP) product was fabricated by EGAIM under different process conditions. A uniform design was applied as an experimental design to investigate the influences of the process parameters on the sink marks. A regression equation was established to describe the quantitative relationship between the important parameters and sink marks in which a data-processing method was applied to determine the optimal value of Fα at significant level α to reduce the possibility of omission of some important parameters. The results show that EGAIM was effective in reducing the sink marks in these iPP products, and the most important parameters were the cooling time, gas pressure, and gas time. This study also provides the quantitative relationship between the important parameters and sink marks as reference for the research of EGAIM on crystalline polymer.


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