Porous calcium phosphate/natural polymer composite scaffold, preparation method and application thereof
A technology of natural polymer and porous calcium phosphate, applied in the field of porous calcium phosphate/natural polymer composite scaffold and its preparation, to achieve the effect of simple and fast preparation process, promotion of adhesion and proliferation, and promotion of adhesion
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Embodiment 1
[0045] PCL (Mn=45000) was selected as the sacrificial model material, gelatin was selected as a natural polymer, and the bone cement system was "tetracalcium phosphate + calcium hydrogen phosphate (molar ratio 1:1)". The implementation steps included:
[0046] (1) Use 3D-Bioplotter TM The printer prefabricated the PCL cylindrical sacrificial model: put the PCL into the high-temperature barrel, select a needle with an inner diameter of 300 μm, and set the heating temperature to 180°C. Use AutoCAD software to design a cylinder model with a diameter of 8 mm and a height of 5 mm, and import it into the Bioplotter RP layering software for layering processing. The layering height is 240 μm, and then import the layered file into the Visual Machines software to set the internal fiber stacking of the model The method is 0° and 90° alternately, and the fiber spacing is 1 mm. After holding for 20 minutes, adjust the platform temperature to 4°C, nitrogen extrusion pressure to 1.6 bar, fi...
Embodiment 2
[0052] PCL (Mn=45000) was selected as the sacrificial model material, gelatin was selected as the natural polymer, and the bone cement system was "partial crystalline calcium phosphate + calcium hydrogen phosphate + hydroxyapatite (mass ratio 45:45:10)". The implementation steps included :
[0053] (1) Use 3D-Bioplotter TM The printer prefabricated the PCL cylindrical sacrificial model: put the PCL into the high-temperature barrel, select a needle with an inner diameter of 300 μm, and set the heating temperature to 180°C. Use AutoCAD software to design a cylinder model with a diameter of 8 mm and a height of 5 mm, and import it into the Bioplotter RP layering software for layering processing. The layering height is 240 μm, and then import the layered file into the Visual Machines software to set the internal fiber stacking of the model The method is 0° and 90° alternately, and the fiber spacing is 1mm. After 20 minutes of heat preservation, adjust the platform temperature to...
Embodiment 3
[0059] TPU (Mn=60000) was selected as the sacrificial model material, gelatin was selected as a natural polymer, and the bone cement system was "tetracalcium phosphate + calcium hydrogen phosphate (molar ratio 1:1)". The implementation steps included:
[0060] (1) Use 3D-Bioplotter TM The printer prefabricated the TPU cylindrical sacrificial model: put the TPU into the high-temperature barrel, select a needle with an inner diameter of 300 μm, and set the heating temperature to 220°C. Use AutoCAD software to design a cylinder model with a diameter of 8 mm and a height of 5 mm, and import it into the Bioplotter RP layering software for layering processing. The layering height is 240 μm, and then import the layered file into the Visual Machines software to set the internal fiber stacking of the model The method is 0° and 90° alternately, and the fiber spacing is 1mm. After 20 minutes of heat preservation, adjust the platform temperature to 20°C, nitrogen extrusion pressure to 2....
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