APPARATUS FOR DRIVING FILAMENT SPOOL OF 3D PRINTER
20180207869 ยท 2018-07-26
Inventors
Cpc classification
B29C64/118
PERFORMING OPERATIONS; TRANSPORTING
International classification
B29C31/04
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The present invention provides an apparatus for driving a filament spool of a 3D printer, which rotates the filament spool for wounding a wire-shaped filament in a forward or reverse direction, including a driving motor installed between an extruder for discharging the filament wound on the filament spool toward a hot end nozzle side and the filament spool and configured to generate a driving force in the forward or reverse direction; a feed roller configured to receive the driving force of the driving motor and to transfer the filament wound on the filament spool to an extruder side or to wound back the filament of the extruder on the filament spool; a filament spool driving roller installed between the feed roller and the filament spool and configured to receive the driving force of the driving motor and to rotate the filament spool; and a torque limiter installed between the driving motor and the feed roller and configured to cause a gear on a filament spool side to idle and only a gear on a driving motor side to rotate when a filament transferring force on the filament spool side is larger than the driving force on the driving motor side.
Claims
1. An apparatus for driving a filament spool of a 3D printer, which rotates the filament spool for wounding a wire-shaped filament in a forward or reverse direction, comprising a driving motor installed between an extruder for discharging the filament wound on the filament spool toward a hot end nozzle side and the filament spool and configured to generate a driving force in a forward or reverse direction; a feed roller configured to receive the driving force of the driving motor and to transfer the filament wound on the filament spool to an extruder side or to wound back the filament of the extruder on the filament spool; a filament spool driving roller installed between the feed roller and the filament spool and configured to receive the driving force of the driving motor and to rotate the filament spool; and a torque limiter installed between the driving motor and the feed roller and configured to cause a gear on a filament spool side to idle and only a gear on a driving motor side to rotate when a filament transferring force on the filament spool side is larger than the driving force on the driving motor side.
2. The apparatus according to claim 1, further comprising an extruder roller installed at extruder and configured to transfer the filament from the filament spool to the extruder, wherein the driving motor transmits the driving force to the extruder roller and the feed roller.
3. The apparatus according to claim 2, comprising a clutch installed between the driving motor and the feed roller and configured to selectively transmit the driving force of the driving motor to the feed roller.
4. The apparatus according to claim 2, wherein the filament spool is built in a case having a filament discharge port at one side thereof, the feed roller and the filament spool driving roller are disposed on a side opposite to the discharge port, an entrance port of the extruder is disposed on a discharge port side of the case, and transmission gears configured to transmit the driving force of the driving motor to the extruder roller and the feed roller, the driving motor and the torque limiter are disposed between the discharge port of the case and the feed roller.
5. The apparatus according to claim 4, wherein the torque limiter includes a first gear connected to the transmission gear on a driving motor side and a second gear connected to the transmission gear on a filament spool side, a limiter supported by a spring is installed between the first gear and the second gear, and the second gear idles when a difference between a force transmitted to a first gear side and a force transmitted to a second gear side exceeds the elastic force of the spring.
6. The apparatus according to claim 1, wherein the filament spool has a gear-shaped portion at an outer circumference, and the filament spool driving roller has a gear-shaped portion which is engaged with the gear-shaped portion of the filament spool.
7. The apparatus according to claim 1, wherein the feed roller and the filament spool driving roller have gear-shaped portions which are engaged with each other.
8. The apparatus according to claim 1, further comprising two driving gears disposed coaxially with the feed roller, wherein one of the driving gears drives the feed roller, and the other gear is connected to the filament spool driving roller to drive the spool.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0022]
[0023]
[0024]
[0025]
[0026]
DETAILED DESCRIPTION OF THE EXEMPLARY EMBODIMENTS
[0027] Referring to
[0028] First, the apparatus for driving the filament spool of the 3D printer according to the present invention is built in a main body (not shown) of the 3D printer together with the filament spool 100 for winding the filament and the extruder 200 for discharging the filament of the filament spool 100 to a hot end nozzle (not shown) side.
[0029] The apparatus for driving the filament spool of the 3D printer according to the present invention includes a driving motor 310, a feed roller 320, a filament spool driving roller 330, transmission gears 341 to 345, and a torque limiter 350.
[0030] The driving motor 310 is installed between the extruder 200 and the filament spool 100, generates a driving force in a forward or reverse direction and rotates the feed roller 320 and an extruder roller 360, which will be described later, in a forward or reverse direction.
[0031] The feeding roller 320 is installed on a side opposite to a discharge port 21 of a case 20 in which the filament spool 100 is built and serves to receive the driving force of the driving motor 310 and to transfer the filament wound on the filament spool 100 to the extruder 200 side or to wind the filament of the extruder 200 back on the filament spool 100.
[0032] The extruder roller 360 is installed at one side of the extruder 200 to allow the filament to be transferred from the filament spool 100 to the extruder 360. The extruder roller 360 is driven by the driving motor 310.
[0033] The filament spool driving roller 330 is installed between the feed roller 320 and the filament spool 100 inside the case 20 to receive the driving motor 310, thereby rotating the filament spool 100.
[0034] The transmission gears 341 to 345 are installed between the driving motor 310 and the feed roller 320 and between the driving motor 310 and the extruder 360 to transmit the driving force of the driving motor 310 to the feed roller 320 and the extruder 360.
[0035] The torque limiter 350 is installed between the driving motor 319 and the feed roller 320 outside the case 20 so that a gear of the filament spool 100 idles and only the gear on the driving motor 310 side rotates when a filament conveying force on the filament spool 100 side becomes larger than the driving force on the driving motor 310 side. For example, when the driving motor 310 is driven in a state in which a large amount of filament is wound on the filament spool 100, the feed roller 320 and the filament spool 100 are rotated at a constant speed by the driving force of the driving motor 310, but the force by which the filament spool 100 pulls the filament exceeds the rotational speed of the feed roller 320. At this time, the torque limiter 350 causes the transmission gear 341 provided between the torque limiter 350 and the feed roller 320 to idle and thus allows the filament to be transferred in accordance with the rotational speed of the feed roller 320 and the exciter roller 360.
[0036] As described above, in the apparatus for driving the filament spool of the 3D printer according to the present invention, a gear locking phenomenon in which a gear is locked and is not operated can be prevented by adjusting the rotational speed of the feed roller 320 in accordance with a change in the force by which the filament spool 100 pulls the filament depending on the amount of filament wound on the filament spool 100.
[0037] Additionally, the apparatus for driving the filament spool of the 3D printer according to the present invention includes a clutch 370 which is installed between the driving motor 310 and the feed roller 320 to selectively transmit the driving force of the driving motor 310 to the feed roller 320.
[0038] The clutch 370 may be a one-way clutch or an electromagnetic clutch which transmits power only in one direction due to a mechanical shape. And the extruder 200 may include a detection sensor 210 which detects the filament.
[0039] Here, when the driving motor 310 is driven in a forward direction, the clutch 370 is controlled to be in an ON state until detecting sensor 210 detects the filament. Therefore, the driving force of the driving motor 310 is transmitted to the extruder roller 360 and the feed roller 320, and the filament is transferred from the filament spool 100 toward the extruder 200. After the detecting sensor 210 detects the filament, the clutch 370 is controlled to be in an OFF state. Therefore, the driving force of the driving motor 310 is transmitted only to the extruder roller 360.
[0040] On the other hand, when the driving motor 310 is driven in a reverse direction, the clutch 370 is controlled to be always in an ON state. Therefore, when the driving motor 310 is driven in a reverse direction, the driving force is transmitted to both the extruder roller 360 and the feed roller 320.
[0041] Due to such operation controlling of the clutch 370, when the filament is supplied in a forward direction, initially, the extruder roller 360 and the feed roller 320 can be simultaneously operated to output the filament with a relatively large force, and then only the extruder roller 360 can be operated to smoothly output the filament. And when the filament is discharged in a reverse direction, the extruder roller 360 and the feed roller 320 can be always operated at the same time to pull the filament with a relatively large force. That is, the apparatus for driving the filament spool of the 3D printer according to the present invention can control a transferring speed of the filament using the clutch 370 which selectively drives the feed roller 320.
[0042] Meanwhile, the filament spool 100 is built in the case 20 having the filament discharge port 21 on one side thereof, and the feed roller 320 and the filament spool driving roller 330 are disposed on a side opposite to the discharge port 21. Also, an entrance port 201 of the extruder 200 is disposed on the discharge port 21 side of the case 20, and the transmission gears 341 to 345, the driving motor 310, the clutch 370 and the torque limiter 350 are disposed between the discharge port 21 of the case 20 and the feed roller 320 outside the case 20.
[0043] Due to such an arrangement of the elements, the present invention can drive all of the extruder roller 360 and the feed roller 320 using one driving motor 310, and the driving components are concentrated on one side of the case 20, thereby ensuring a short driving distance. Therefore, a driving unit of the 3D printer can be configured compactly.
[0044] Meanwhile, referring to
[0045] Therefore, when a relatively large amount of filament is wound on the filament spool 100, the force by which the filament spool 100 pulls the filament increases, and a force transmitted to the second gear 352 of the torque limiter 350 exceeds the force of the spring, and thus the second gear 352 idles. Accordingly, the rotational speed of the feed roller 320 can be adjusted in accordance with the driving force of the driving motor 310.
[0046] Preferably, the filament spool 100 may have a gear-shaped portion (not shown) on an outer circumference thereof, and the filament spool driving roller 330 may have a gear-shaped portion (not shown) which is engaged with the gear-shaped portion of the filament spool 100. Therefore, the driving force of the driving motor 310 can be accurately transmitted to the filament spool 100.
[0047] Also, the feed roller 320 and the filament spool driving roller 330 may respectively have gear-shaped portions 321 and 331 which are engaged with each other at one side of each of them (actually, a separate connection gear 346 is installed between the feed roller 320 and the filament spool driving roller 330). The transmission gears 341 to 345 are connected to the gear-shaped portion 321 of the feed roller 320 to transmit the driving force of the driving motor 310 to the feed roller 320, and the gear-shaped portion 321 of the feed roller 320 is connected to the gear-shaped portion 331 of the filament spool driving roller 330 to transmit the driving force of the driving motor 310 to the filament spool 100.
[0048] Referring to
[0049] Specifically, the feed roller 320 is provided with two driving gears 321a and 321b disposed coaxially with the feed roller 320, and one 321a of the driving gears 321a and 321b is used for driving the feed roller 320, and the other one 321b thereof is connected to the filament spool driving gear 330, more precisely, the connection gear 346 and is used to drive the filament spool 100. Therefore, upon the rotation in a reverse direction, the moving speed of the filament due to the rotation of the filament spool 100 can be made faster than the transferring speed of the filament of the feed roller 320.
[0050] It will be apparent to those skilled in the art that various modifications and variations can be made to the disclosed embodiments without departing from the scope or spirit of the disclosure. In view of the foregoing, it is intended that the disclosure covers modifications and variations provided that they fall within the scope of the following claims and their equivalents.