3D bioprinter
11738506 · 2023-08-29
Assignee
Inventors
Cpc classification
B29C64/386
PERFORMING OPERATIONS; TRANSPORTING
B33Y70/00
PERFORMING OPERATIONS; TRANSPORTING
B33Y30/00
PERFORMING OPERATIONS; TRANSPORTING
B29C64/393
PERFORMING OPERATIONS; TRANSPORTING
B29C67/00
PERFORMING OPERATIONS; TRANSPORTING
B29C64/106
PERFORMING OPERATIONS; TRANSPORTING
B29C31/04
PERFORMING OPERATIONS; TRANSPORTING
B29C64/25
PERFORMING OPERATIONS; TRANSPORTING
C12N5/0062
CHEMISTRY; METALLURGY
B33Y40/00
PERFORMING OPERATIONS; TRANSPORTING
C12M21/08
CHEMISTRY; METALLURGY
B33Y50/02
PERFORMING OPERATIONS; TRANSPORTING
B29C64/20
PERFORMING OPERATIONS; TRANSPORTING
International classification
B29C64/165
PERFORMING OPERATIONS; TRANSPORTING
B29C31/04
PERFORMING OPERATIONS; TRANSPORTING
B29C64/106
PERFORMING OPERATIONS; TRANSPORTING
B29C64/20
PERFORMING OPERATIONS; TRANSPORTING
B29C64/25
PERFORMING OPERATIONS; TRANSPORTING
B29C64/386
PERFORMING OPERATIONS; TRANSPORTING
B29C64/393
PERFORMING OPERATIONS; TRANSPORTING
B29C67/00
PERFORMING OPERATIONS; TRANSPORTING
B33Y30/00
PERFORMING OPERATIONS; TRANSPORTING
B33Y40/00
PERFORMING OPERATIONS; TRANSPORTING
B33Y50/02
PERFORMING OPERATIONS; TRANSPORTING
B33Y70/00
PERFORMING OPERATIONS; TRANSPORTING
C12M3/00
CHEMISTRY; METALLURGY
Abstract
The present invention relates to a 3D bioprinter. The 3D bioprinter, according to the present invention, comprises: a case inside of which a work space is provided; a printing plate installed inside of the case so as slide in the forward, backward, left, and right directions; a first nozzle installed inside the case for dispensing a biomaterial in a solid state on the printing plate; a second nozzle installed inside the case for dispensing a biomaterial in a liquid state on the printing plate; and a control unit for controlling the dispensing by the first nozzle and the second nozzle, wherein the first nozzle and the second nozzle are used to print a single structure by stacking the biomaterial in the solid state and the biomaterial in the liquid state.
Claims
1. A three-dimensional (3D) bioprinter comprising: a case provided with a door configured to open and close a working space to separate the working space from an outside; a stage unit provided with a printing plate installed in the working space and configured to move in front-rear and left-right directions; a first nozzle installed in the working space and configured to discharge a solid state biomaterial to the printing plate; a second nozzle installed in the working space and configured to discharge a fluid state biomaterial to the printing plate, wherein the second nozzle includes a housing in which the fluid state biomaterial is stored; a temperature adjusting part connected to the case to adjust a temperature of the printing plate and the second nozzle; and a controller configured to control discharge of the first nozzle and the second nozzle, wherein the controller controls the first nozzle and the second nozzle to stack the solid state biomaterial and the fluid state biomaterial to be printed in one structure, and wherein the first nozzle discharges so that the structure becomes a hard tissue using the solid state biomaterial, and the second nozzle fills the inside of the structure using the liquid state biomaterial, wherein the temperature adjusting part includes: a plurality of Peltier members disposed in the working space and configured to reduce the temperature of the second nozzle and the printing plate, the plurality of Peltier members including a first Peltier member installed on the side of the second nozzle and a second Peltier member installed on the side of the printing plate; a plurality of heating members disposed in the working space and configured to increase the temperature of each of the printing plate and the second nozzle, the plurality of heating members including a first heating member installed on the side of the second nozzle, and a second heating member installed on the side of the printing plate; a temperature adjusting part case spaced apart from the working space; a water tank disposed in the temperature adjusting part case and configured to store cooling water; a plurality of transferring members for transferring the cooling water stored in the water tank; a pump configured to transfer the cooling water and control a speed of the cooling water being transferred, a radiator disposed between the pump and the transferring member in the temperature adjusting part case; a heat conductive fixing member capable of transferring heat energy provided between the housing of the second nozzle and the first Peltier member and between the housing of the second nozzle and the first heating member; and conductive plates including a first conductive plate attached to the first Peltier member and the first heating member in an opposite side of the heat conductive fixing member and a second conductive plate attached to the second Peltier member and the second heating member in an opposite side of the printing plate, wherein the transferring members are connected to the Peltier members, and wherein the temperature adjusting part controls the temperature of the fluid state biomaterial accommodated in the second nozzle and controls the temperature of the printing plate for hardening the biomaterial discharged from the second nozzle.
2. The 3D bioprinter of claim 1, wherein the controller controls the temperature adjusting part.
3. The 3D bioprinter of claim 2, wherein the controller is provided to independently control the first nozzle and the second nozzle.
4. The 3D bioprinter of claim 3, wherein: the controller controls the second nozzle to gradationally discharge the fluid state biomaterial; and the gradational discharge is performed by a step motor connected to the second nozzle.
5. The 3D bioprinter of claim 4, further comprising an insulation cover configured to surround an exterior of the second nozzle and insulate the second nozzle.
6. The 3D bioprinter of claim 1, wherein a purifying member configured to purify the working space is provided in the case.
Description
DESCRIPTION OF DRAWINGS
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MODES OF THE INVENTION
(7) Hereinafter, embodiments of the present invention will be described in more detail with reference to the accompanying drawings. The embodiments of the present invention may be transformed to various shapes, so a scope of the present invention should not be limited to the following embodiments. The embodiments are provided to more completely describe the present invention to those skilled in the art. Accordingly, shapes of elements in the drawings are exaggerated for more apparent descriptions.
(8) Hereinafter, an example of the present invention will be described in detail with reference to
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(10) The case 110 may be provided in a cylindrical shape having a working space therein. The case 110 may be provided with a door 111 configured to open or seal the working space. The working space may be provided with a thermometer 113 on which a temperature in the case 110 is displayed.
(11) The stage unit 120 is provided to be slidable in vertical and lateral directions.
(12) The first nozzle 130 discharges a solid state biomaterial 1 to the printing plate 121. The solid state biomaterial 1 may be a polymer biomaterial in a filament (a wire having a cross-sectional surface in a circular shape) type. The first nozzle 130 is installed in the working space in the case 110.
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(14) As shown in
(15) The first nozzle 130 may be provided as an extruder nozzle. As an example, a size of a discharge port of the extruder nozzle may be provided to be 0.2 to 0.4 mm. A thermoplastic resin extrusion lamination method (fused filament fabrication) may be used as an extruding method of the first nozzle 130.
(16) The second nozzle 140 discharges a fluid state biomaterial to the printing plate 121. The second nozzle 140 may be provided as a dispenser nozzle.
(17) The second nozzle 140 is installed in the working space in the case 110. Referring to
(18) The insulation cover 142 surrounds the outside of the housing 141 and insulates the fluid state biomaterial which is sensitive to temperature variation from the outside.
(19) The step motor 143 pushes the housing 141 in a downward direction according to an electric signal to discharge the fluid state biomaterial. The step motor 143 may move by 1.5 microns as a resolution (a moving distance by a minimal electric signal). Accordingly, the fluid state biomaterial may be gradationally discharged by 1.5 microns. As an example, a size of a discharge port of the dispenser nozzle may be provided to be 0.05 to 0.8 mm. Accordingly, a fluid biomaterial in a gel shape such as a hydrogel or the like may be discharged by 1.5 microns.
(20) A light source module may be installed under the second nozzle 140. The light source module may generate an ultraviolet wavelength to harden a photocurable fluid state biomaterial. As an example, when the photocurable fluid state biomaterial is discharged from the second nozzle 140, the fluid state biomaterial may be hardened using the light source module directly when discharged. Accordingly, the light source module may prevent collapse of the discharged fluid state biomaterial.
(21) The controller 150 controls discharge of the first nozzle 130 and second nozzle 140. As an example, the first nozzle 130 discharges so that the outside of a structure becomes a hard tissue, and the second nozzle 140 fills the inside of the structure using the liquid state biomaterial. Accordingly, the structure may be stacked in a core-shell structure. That is, the solid state biomaterial and the liquid state biomaterial may be used together to be combined and stacked as one structure. The controller 150 controls the temperature adjusting part 160 which will be described below.
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(24) The temperature adjusting part case 161 provides an inner space. The temperature adjusting part case 161 may be formed of a metal material and, as an example, may be formed of aluminum.
(25) The water tank 162 may store cooling water. The water tank 162 is provided in the temperature adjusting part case 161.
(26) The Peltier member 163 may decrease the temperature of each of the printing plate 121 and the second nozzle 140. As an example, the Peltier member 163 may decrease the temperature of each of the printing plate 121 and the second nozzle 140 to −10° C. using the controller 150. In the Peltier member 163, when power is supplied from a power supply device (SMPS) and thus a temperature of one surface rises, a temperature of the other surface falls. The Peltier member 163 is attached to one side of each of the printing plate 121 and the second nozzle 140. Cross-sectional surfaces of the Peltier member 163 which come into contact with the printing plate 121 and the second nozzle 140 are different surfaces.
(27) The heating member 164 is attached to one side of the printing plate 121. Further, the heating member 164 is attached to one side of the second nozzle 140. As described above, the heating member 164 may be provided as a pair. The heating member 164 may receive the power from the power supply device (SMPS) to increase the temperature of each of the printing plate 121 and the second nozzle 140. As an example, the heating member 164 may increase the temperature of each of the printing plate 121 and the second nozzle 140 to 80° C. using the controller 150.
(28) The heat conductive plates 167 are attached to the Peltier members 163 and the heating members 164. The heat conductive plates 167 transfer thermal energy generated from the Peltier members 163 and the heating members 164 to the printing plate 121 and the second nozzle 140. The heat conductive plate 167 may have a large area which comes into contact with the printing plate 121 and the second nozzle 140 to improve a heat transfer rate.
(29) The temperature adjusting part 160 includes a transferring member 165, a pump 166, and a radiator.
(30) The transferring member 165 may transfer the cooling water to the Peltier members 163 and the heating members 164. In this case, the pump 166 and the radiator may adjust the speed of the cooling water which is transferred.
(31) A heat conductive fixing member 125 may be provided between the second nozzle 140 and the Peltier member 163. The heat conductive fixing member 125 may fix the second nozzle 140 to one side of the case 110. The heat conductive fixing member 125 may transfer thermal energy transferred from the temperature adjusting part 160 to the second nozzle 140.
(32) Hereinafter, a method of stacking the fluid state biomaterial in a 3D structure using the 3D bioprinter 100 will be described.
(33) A biomaterial “A” is configured to maintain a fluid state at room temperature and is hardened only in a predetermined temperature range. In order to stack the 3D structure using the biomaterial “A”, the temperature of the second nozzle 140 into which the biomaterial “A” is injected is maintained at room temperature using the temperature adjusting part 160. The temperature of the printing plate 121 is maintained at a particular temperature using the temperature adjusting part 160. The biomaterial “A” injected into the second nozzle 140 is discharged to the printing plate 121 in the predetermined temperature range. The fluid state biomaterial “A” is hardened on the printing plate 121 while being discharging and thus may be stacked in the 3D structure. As described above, a biomaterial hardened or fluidized in a set temperature range may be stacked in a 3D structure.
(34) As described above, since the printing plate 121 and the second nozzle 140 of which the temperatures may be adjusted are used, various biomaterials hardened or fluidized in a set temperature range may be used as a material of a 3D structure.
(35) For convenience of users, a function for adjusting the temperatures of the printing plate 121 and the second nozzle 140 may set a temperature through a touch screen 114 provided on the case 110. Further, remote control may be performed due to connection between an android-based mobile terminal and the 3D bioprinter 100.
(36) The above detailed description is provided to exemplify the present invention. Further, the above description shows and describes the embodiment of the present invention and may be used in various different combinations, changes, and environments. That is, changes and modifications may be performed in a scope of a concept of the present invention disclosed in the specification, an equivalent of the above disclosure, and/or scope of a technology or knowledge in a corresponding field. The above-described embodiment is provided to an optimum state for implementing technical spirit of the present invention, and various modifications required in specific application fields and usages in the present invention. Accordingly, the detailed description in the present invention does not limit the present invention from the disclosed embodiment. Further, appended claims include other embodiments.
REFERENCE NUMERALS
(37) 1: solid biomaterial 100: 3D bioprinter 110: case 111: door 112: purifying member 113: thermometer 114: touch screen 115: ventilation member 120: stage unit 121: printing plate 122: coupling member 123: front and rear guide member 124: right and left guide member 125: heat conductive fixing member 130: first nozzle 131: introduction port 132: discharge port 133: fan 134: winding member 135: guide member 140: second nozzle 141: housing 142: insulation cover 143: step motor 150: controller 160: temperature adjusting part 161: temperature adjusting part case 162: water tank 163: Peltier member 164: heating member 165: transferring member 166: pump 167: heat conductive plate