Key result
Novel planar biaxial device fully controls in-plane deformation for soft tissues as small as ~4 mm.
Why the study?
Existing planar biaxial testing systems for soft tissues are limited in fully prescribing in-plane deformation, ensuring deformation homogeneity, and accommodating small specimens.
The development of this novel biaxial testing device enables robust biomechanical investigation of very small soft tissue specimens, such as murine aortic tissues from genetic disease models.
Allows testing of scarce small soft tissue samples; leaves open clinical translation pending in vivo validation.
Simulations of soft tissues require accurate and robust constitutive models, whose form is derived from carefully designed experimental studies. For such investigations of membranes or thin specimens, planar biaxial systems have been used extensively. Yet, all such systems remain limited in their ability to: (1) fully prescribe in-plane deformation gradient tensor F2D, (2) ensure homogeneity of the applied deformation, and (3) be able to accommodate sufficiently small specimens to ensure a reasonable degree of material homogeneity. To address these issues, we have developed a novel planar biaxial testing device that overcomes these difficulties and is capable of full control of the in-plane deformation gradient tensor F2D and of testing specimens as small as ∼4 mm × ∼4 mm. Individual actuation of the specimen attachment points, combined with a robust real-time feedback control, enabled the device to enforce any arbitrary F2D with a high degree of accuracy and homogeneity. Results from extensive device validation trials and example tissues illustrated the ability of the device to perform as designed and gather data needed for developing and validating constitutive models. Examples included the murine aortic tissues, allowing for investigators to take advantage of the genetic manipulation of murine disease models. These capabilities highlight the potential of the device to serve as a platform for informing and verifying the results of inverse models and for conducting robust, controlled investigation into the biomechanics of very local behaviors of soft tissues and membrane biomaterials.
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Potter et al. (2017) studied this question. Novel planar biaxial testing device was evaluated on Device validation and capability to enforce arbitrary in-plane deformation gradient tensor F2D. A novel planar biaxial testing device was developed and validated to fully control the in-plane deformation gradient tensor for soft tissue specimens as small as ~4 mm × ~4 mm.
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