Stretch blow moulding process has been used for the manufacture of bioresorbable vascular scaffold (BVS) made by poly (l-lactic acid) (PLLA) to improve its mechanical performance. In order to better understand the process, thermomechanical properties of PLLA were investigated by experimental method. Extruded PLLA sheets were biaxial stretched under strain rate of 1s−1, 4s−1 and 16s−1 to simulate the deformation process applicable in the blow moulding process. Both the equal-biaxial stretch and constant-width stretch were conducted by an in-house developed equipment. By differential scanning calorimeter (DSC), thermal analysis for materials before and after stretch were compared to evaluate the microstructural change of PLLA materials in the deformation process. A constitutive model based on glass rubber model was presented to simulate the mechanical behaviour of PLLA above glass transition under biaxial deformation.
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16 October 2017
PROCEEDINGS OF THE 20TH INTERNATIONAL ESAFORM CONFERENCE ON MATERIAL FORMING: ESAFORM 2017
26–28 April 2017
Dublin, Ireland
Research Article|
October 16 2017
Investigation on thermomechanical properties of poly (l-lactic acid) for the stretch blow moulding process of bioresorbable vascular scaffold
Huidong Wei;
Huidong Wei
a)
1
School of Mechanical and Aerospace Engineering
, Queen’s University Belfast 123 Stranmillis Road, Ashby Building, BT9 5AH, Belfast, UK
Search for other works by this author on:
Gary Menary
Gary Menary
b)
1
School of Mechanical and Aerospace Engineering
, Queen’s University Belfast 123 Stranmillis Road, Ashby Building, BT9 5AH, Belfast, UK
Search for other works by this author on:
Huidong Wei
1,a)
Gary Menary
1,b)
1
School of Mechanical and Aerospace Engineering
, Queen’s University Belfast 123 Stranmillis Road, Ashby Building, BT9 5AH, Belfast, UK
AIP Conf. Proc. 1896, 060002 (2017)
Citation
Huidong Wei, Gary Menary; Investigation on thermomechanical properties of poly (l-lactic acid) for the stretch blow moulding process of bioresorbable vascular scaffold. AIP Conf. Proc. 16 October 2017; 1896 (1): 060002. https://doi.org/10.1063/1.5008065
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