4.6 Article

Preparation of Microcellular Foams by Supercritical Carbon Dioxide: A Case Study of Thermoplastic Polyurethane 70A

Journal

PROCESSES
Volume 9, Issue 9, Pages -

Publisher

MDPI
DOI: 10.3390/pr9091650

Keywords

supercritical CO2; microcellular foam; thermoplastic polyurethane 70A

Funding

  1. National Defense Industrial Development Foundation
  2. Ministry of Science and Technology Taiwan [MOST 108-2221-E-027-069-MY3]

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This study presents a case study on producing microcellular foam of commercial TPU through supercritical CO2 foaming process. The effects of saturation temperature and pressure on the expansion ratio, cell size, and density were investigated. Results show that the expansion ratio can reach as high as 4.4, while cell size and density can be controlled within certain ranges by adjusting the saturation conditions.
In this study, a case study to produce microcellular foam of a commercial thermoplastic polyurethane (TPU) through the supercritical carbon dioxide (CO2) foaming process is presented. To explore the feasibility of TPU in medical device and biomedical application, a soft TPU with Shore hardness value of 70A was selected as the model compound. The effects of saturation temperature and saturation pressure ranging from 90 to 140 degrees C and 90 to 110 bar on the expansion ratio, cell size and cell density of the TPU foam were compared and discussed. Regarding the expansion ratio, the effect of saturation temperature was considerable and an intermediate saturation temperature of 100 degrees C was favorable to produce TPU microcellular foam with a high expansion ratio. On the other hand, the mean pore size and cell density of TPU foam can be efficiently manipulated by adjusting the saturation pressure. A high saturation pressure was beneficial to obtain TPU foam with small mean pore size and high cell density. This case study shows that the expansion ratio of TPU microcellular foam could be designed as high as 4.4. The cell size and cell density could be controlled within 12-40 mu m and 5.0 x 10(7)-1.3 x 10(9) cells/cm(3), respectively.

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