The above and other objects, features and other advantages of the present invention will be more clearly understood from the following detailed description taken in conjunction with the accompanying drawings, in which:
Now, preferred embodiments of the present invention will be described with reference to the accompanying drawings.
The plotter 1 and the electric radiator 2 are integrally formed with each other. The plotter 1 is movable in X, Y, and Z-axes directions.
Specifically, the plotter 1 is backed up by the computer 3, which has the function of designating X, Y, and Z-axes directional positions of the plotter 1, so as to designate the address of the plotter 1 for the formation of the three-dimensional basic framework.
The electric radiator 2 includes a solution storage tank 21 for storing a bio-polymer solution to be supplied into the nozzle 23, a collector 25 provided below the nozzle 23 for allowing the solution radiated from the nozzle 23 to be accumulated on a surface thereof to have the form of nano-scale fibers, and a voltage generator 24 connected between the nozzle 23 and the collector 25 for applying a voltage to both the nozzle 23 and the collector 25.
Preferably, the control computer 3 includes a three-dimensional data preparing unit for preparing three-dimensional data related to the material for the regeneration of a tissue, a plotter data generating unit for generating plotter data from the three-dimensional data, and an output unit for outputting signals for controlling the operations of the plotter 1 and the electric radiator 2.
Hereinafter, a manufacturing method using the above described apparatus for manufacturing the three-dimensional material for the regeneration of a tissue will be described with reference to
First, a three-dimensional shape of an artificial prosthesis is molded by use of the three-dimensional data preparing unit provided in the control computer 3, to prepare three-dimensional data. Then, on the basis of the three-dimensional data, plotter data is generated.
Subsequently, the control computer 3 outputs a drive signal to the plotter 1 on the basis of the plotter data. As the plotter 1 moves in X, Y, and Z-axes directions in response to the drive signal, a solution is injected through the plotter nozzle 11, to form a basic framework.
After completing the formation of the basic frameworks, the electric radiator 2 is operated, to form nano-fibrous cell culture scaffolds between the basic frameworks as well as the surface of the respective basic frameworks formed by the plotter 1.
Specifically, if a high voltage is applied between the nozzle 23 and the collector 25 and the solution stored in the solution storage tank 21 is supplied into the nozzle 23, the solution is able to be radiated from the nozzle 23, thereby being accumulated in the basic framework formed by the plotter 1 to have the form of nano-scale fibers.
Consequently, according to the present invention related to the manufacture of the three-dimensional material for the regeneration of a tissue, the three-dimensional basic frameworks are formed by use of the plotter having the plotter nozzle, and the nano-fibrous cell culture scaffolds are formed between the basic frameworks as well as on the surface of the respective basic frameworks formed by the plotter by use of the electric radiator.
As apparent from the above description, the present invention provides an apparatus for manufacturing a three-dimensional material for the regeneration of a tissue, which comprises a plotter having a plotter nozzle adapted to discharge a bio-polymer solution, the plotter being movable in X, Y, and Z-axes directions and used to form three-dimensional basic frameworks, and an electric radiator for forming nano-fibrous cell culture scaffolds between the basic frameworks as well as on the surface of the respective basic frameworks. The manufacturing apparatus having the above described configuration has the effect of reducing the manufacturing time of the three-dimensional nano-fibrous scaffolds for the regeneration of a tissue, and of achieving an improvement in the propagation efficiency of cells by virtue of the nano-scale cell culture scaffolds.
Although the preferred embodiments of the present invention have been disclosed for illustrative purposes, those skilled in the art will appreciate that various modifications, additions and substitutions are possible, without departing from the scope and spirit of the invention as disclosed in the accompanying claims.
Number | Date | Country | Kind |
---|---|---|---|
1020060037521 | Apr 2006 | KR | national |