3D printer spray nozzle structure and method thereof for controlling speed and precision
10046500 ยท 2018-08-14
Assignee
Inventors
- Zhen Shen (Guangdong, CN)
- Xue Liu (Guangdong, CN)
- Gang Xiong (Guangdong, CN)
- Feiyue Wang (Guangdong, CN)
Cpc classification
B33Y30/00
PERFORMING OPERATIONS; TRANSPORTING
B29C48/252
PERFORMING OPERATIONS; TRANSPORTING
B29C64/393
PERFORMING OPERATIONS; TRANSPORTING
B29C64/106
PERFORMING OPERATIONS; TRANSPORTING
B29C48/92
PERFORMING OPERATIONS; TRANSPORTING
B29C64/118
PERFORMING OPERATIONS; TRANSPORTING
B33Y50/02
PERFORMING OPERATIONS; TRANSPORTING
B29C48/251
PERFORMING OPERATIONS; TRANSPORTING
B29K2055/02
PERFORMING OPERATIONS; TRANSPORTING
B29C48/285
PERFORMING OPERATIONS; TRANSPORTING
International classification
B29C67/00
PERFORMING OPERATIONS; TRANSPORTING
B33Y30/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The present invention relates to a technical field of 3D printing, and more particularly to a 3D printer spray nozzle structure and a method thereof for controlling speed and precision. According to the present invention, a feeding pipeline is embedded in an external shell, the feeding pipeline and an extruder are coaxially connected; the extruder is driven by a driving device, so as to rotate relative to the feeding pipeline. A rotation angle of the extruder relative to the feeding pipeline is controlled by rotation of a motor, for controlling a filament area actually sprayed by the extrude, in such a manner that printing speed and precision is controlled for suiting different requirements of different printing area. The present invention controls the printing speed and precision, for improving overall printing speed with precision requirements satisfied, and is applicable to 3D printer spray nozzle structure and controlling.
Claims
1. A 3-dimensional printer spray nozzle structure, comprising: a feeding pipeline, an extruder, an external shell and a driving device, wherein the extruder is arranged under the feeding pipeline; wherein the extruder is rotatable relative to the feeding pipeline, so as to adjust a cross section area of a sprayed filament; wherein the feeding pipeline is embedded in the external shell, the feeding pipeline and the extruder are coaxially connected; the extruder is driven by the driving device, so as to rotate relative to the feeding pipeline; wherein the driving device comprises a driving gear, a driven gear and a motor; wherein the driving gear is mounted inside the external shell, the driven gear is mounted on the extruder; the driving gear is engaged with the driven gear; the motor drives the driving gear; the driven gear is driven by the driving gear, so as to drive the extruder to rotate; wherein the driven gear is mounted at a top end of the extruder; wherein a barycenter of an internal channel cross section shape of the feeding pipeline and a barycenter of an internal channel cross section shape of the extruder are at one axle perpendicular to both an internal channel cross section of the feeding pipeline and an internal channel cross section of the extruder; the extruder is rotatable around the axle.
2. The 3-dimensional printer spray nozzle structure, as recited in claim 1, wherein a barycenter of an internal channel cross section shape of the feeding pipeline and a barycenter of an internal channel cross section shape of the extruder are at one axle perpendicular to both an internal channel cross section of the feeding pipeline and an internal channel cross section of the extruder; the extruder is rotatable around the axle.
3. The 3-dimensional printer spray nozzle structure, as recited in claim 1, wherein the internal channel cross section shape of the feeding pipeline and the internal channel cross section shape of the extruder are both regular polygons.
4. The 3-dimensional printer spray nozzle structure, as recited in claim 2, wherein the internal channel cross section shape of the feeding pipeline and the internal channel cross section shape of the extruder are both regular polygons.
5. The 3-dimensional printer spray nozzle structure, as recited in claim 3, wherein the regular polygons comprise triangles and rectangles.
6. The 3-dimensional printer spray nozzle structure, as recited in claim 5, wherein the internal channel cross section shape of the feeding pipeline and the internal channel cross section shape of the extruder are both the triangle with a side length of 3a; a rotation angle of the extruder around the axle perpendicular to both the internal channel cross section of the feeding pipeline and the internal channel cross section of the extruder is , an area of a coincide region of both the internal channel cross section of the feeding pipeline and the internal channel cross section of the extruder equals to a cross section area S of materials actually extruded by the extruder in a unit time; then
7. The 3-dimensional printer spray nozzle structure, as recited in claim 6, wherein the external shell comprises a heater therein, for heating the materials transported in the feeding pipeline, in such a manner that the materials are in a melted state; the materials transported are ABS or PLA fusible materials.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Referring to drawings, the present invention is further illustrated.
(2)
(3)
(4) wherein: a-perspective view of a feeding pipeline; b-top view of the feeding pipeline;
(5) c-perspective view of an extruder; d-top view of the extruder.
(6)
(7)
(8)
(9)
(10)
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
(11) Referring to
(12) The feeding pipeline 103 and the extruder 107 are coaxially connected. An internal channel 102 cross section shape of the feeding pipeline 103 and an internal channel 108 cross section shape of the extruder 107 are both regular polygons, wherein the regular polygons comprise triangles and rectangles; wherein a barycenter of the internal channel 102 cross section shape of the feeding pipeline 103 and a barycenter of the internal channel cross section shape 108 of the extruder 107 are at one axle perpendicular to both an internal channel cross section of the feeding pipeline 103 and an internal channel cross section of the extruder 107.
(13) A driven gear 104 is mounted at a top portion of the extruder 107. The driven gear 104 drives the extruder 107 to rotate by rotation. A motor inside the external shell 101 rotates for rotating a main axle 106, and a driving gear 105 is mounted on the main axle 106, which drives a driven gear 104 to rotate. The present invention accurately controls a rotation number of the motor through software, so as to control a rotation angle of the extruder 107 around an axle perpendicular to both the internal channel 102 cross section of the feeding pipeline 103 and the internal channel 108 cross section of the extruder 107.
(14) Referring to
(15) Referring to a preferred embodiment, the present invention is further illustrated. The internal channel 102 cross section shape of the feeding pipeline 103 and the internal channel 108 cross section shape of the extruder 107 are both the equilateral triangle with a side length of 3a; the rotation angle of the extruder 107 is , the area of the coincide region of both the internal channel 102 cross section of the feeding pipeline 103 and the internal channel 108 cross section of the extruder 107 equals to a shadowed cross section area S of in
(16)
(17) wherein is adjusted by the motor for changing the cross section area S of the materials actually sprayed by the extruder 107 in a unit time; because a working moving speed of the spray nozzle is constant, for ensuring Z-axis forming heights of all layers are identical, the feeding speed of the feeding pipeline 103 is real-time controlled according to the cross section area S of the materials actually sprayed by the extruder 107; the feeding speed equals in value to the melting speed of materials transported, and also equals to the printing speed V during printer working.
(18) Referring to
(19) Referring to
(20) defining a printing speed V=K*S*L; wherein S is a cross section area of a filament actually sprayed by an extruder, L is a unit printing forming area, K is a printing related constant;
(21) wherein the unit printing forming area is a top surface area formed by extruding the materials along a same direction within a unit time by the extruder 107;
(22) determining a feeding speed by the cross section area S of the filament actually sprayed by the extruder and the unit printing forming area L, wherein a melting speed is also affected; the feeding speed and the melting speed together determine the printing speed; and
(23) forming a signal referring to changes of S and L for controlling the printing speed, which also adjusting the feeding speed of a feeding pipeline of a spray nozzle.