| Literature DB >> 32300627 |
Nuttapol Limjeerajarus1, Mahunnop Fakkao1, Sorapon Na Lampang1, Thanaphum Osathanon2, Prasit Pavasant2, Chalida Nakalekha Limjeerajarus3,4,5.
Abstract
The data contained within this article relate to experimental data on mechanical behavior of an in-house cast hyperelastic Polydimethysiloxane (PDMS) based membrane (SilasticⓇ T-4, Dow Corning) for cell culture, which was used as a tool for applying tensile stress on cells and tissues. With the experimentally obtained material constants, tensile stress distribution over the membrane surface was numerically assessed using a finite element analysis (FEA). The membrane area having a uniform tensile stress distribution under different strain loading conditions of 1-20% was suggested for cell culture.Entities:
Keywords: Cell culture; Finite element analysis; Material constants; Polydimethysiloxane; Tensile stress
Year: 2020 PMID: 32300627 PMCID: PMC7153299 DOI: 10.1016/j.dib.2020.105476
Source DB: PubMed Journal: Data Brief ISSN: 2352-3409
Fig. 1Stress-strain curves of the membrane obtained from the experiment and the 2nd order polynomial mathematical model. The shaded error band presents the standard deviation of the data.
The membrane material constants in the 2nd order polynomial mathematical model used in FEA.
| C10 | C01 | C20 | C11 | C02 |
|---|---|---|---|---|
| 0.088525 | 0.047481 | 0.0093126 | −0.006518 | 0.00041182 |
Fig. 2(a) The model geometry used for simulation and (b) the boundary conditions used in this model.
Fig. 3Normal tensile stress distributions on the membrane surface area under different strain loading conditions of (a) 1%, (b) 3, (c) 5%, (d) 7%, (e) 10 and (f) 20%.
Fig. 4Illustration of the uniform tensile stress distributed areas.
Range of normal tensile stress and dimensions of the suggested areas under different strain loading conditions.
| Displacement in | Normal tensile stress (MPa) | Suggested area (X Z from the center of the membrane, mm) |
|---|---|---|
| 0.29 mm (1%strain) | 0.003613–0.008632 | ±12 · ±12 |
| 0.87 mm (3%strain) | 0.01589–0.02571 | ±12 · ±12 |
| 1.45 mm (5%strain) | 0.03271–0.04261 | ±12 · ±12 |
| 2.03 mm (7%strain) | 0.04931– 0.05930 | ±12 · ±12 |
| 2.90 mm (10%strain) | 0.07459–0.08419 | ±12 · ±12 |
| 5.80 mm (20%strain) | 0.15552–0.16553 | ±12.25 · ±11 |
| Subject | Mechanical Engineering |
| Specific subject area | Tensile stress, Cell culture |
| Type of data | Table |
| How data were acquired | Universal testing machine (UTM) (Instron 3360 series) for mechanical behavior test and ANSYS WORKBENCH R16.2 for numerical simulation |
| Data format | Raw |
| Parameters for data collection | After casting, the hyperelastic Polydimethysiloxane (PDMS) based membrane was treated with plasma and UV radiations, and coated with gelatin |
| Description of data collection | The data on mechanical behavior of the membrane was experimentally measured by a UTM and presented as stress-strain curves, which can be expressed by a 2nd order polynomial mathematical model. This model was then used in FEA based numerical simulations in ANSYS WORKBENCH R16.2 in order to analyze tensile stress distribution over the membrane surface under different strain loading conditions. Model validation was conducted by comparing the tension force required to generate a 20% strain loading as measured with the UTM with that estimated by the simulation. The membrane area having uniform tensile stress distribution was suggested to be used for cell culture. |
| Data source location | Institution: Chulalongkorn University |
| Data accessibility | With the article, and |
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