Printed object surface treatment-type 3D printer for construction
12151394 ยท 2024-11-26
Assignee
Inventors
Cpc classification
E04G2021/049
FIXED CONSTRUCTIONS
B33Y30/00
PERFORMING OPERATIONS; TRANSPORTING
B28B1/001
PERFORMING OPERATIONS; TRANSPORTING
E04G21/0463
FIXED CONSTRUCTIONS
International classification
Abstract
The present invention relates to a 3D printer for construction for printing and forming various structures, in which a spray pipe follows a nozzle for discharging concrete or mortar, and sprays a liquid material onto the surface of a printed object, thereby enabling the liquid material to be applied on the surface of the printed object. Through the present invention, the printing of the printed object and the spraying of the liquid material onto the surface of the printed object may be carried out simultaneously by means of the 3D printer for construction, and thus a rapid and uniform coating treatment of the printed object is possible, and an adequate wet state of the tissue of the printed object may be maintained.
Claims
1. A printed object surface-treatment type 3D printer for construction, comprising: a movable body (20); a nozzle (10) mounted on the movable body (20); a spray pipe (60) configured to follow the nozzle (10); and a plurality of spray holes (61) mounted on the spray pipe (60), wherein the nozzle (10) is configured to discharge a fluid material, wherein the spray pipe (60) is configured to move along with movement of the movable body (20) and the nozzle (10), wherein the spray pipe (60) is connected to the movable body (20) via a support shaft (40), an elevating body (41) and a rotatable body 30, wherein a range between the spray pipe (60) and a printed object is adjusted as the spray pipe (60) is lifted or lowered along with the support shaft (40) being lifted or lowered by the elevating body (41) connected to an upper end of the support shaft (40), wherein the plurality of spray holes (61) are mounted on the spray pipe (60) in a direction perpendicular to the discharge direction of the fluid material from the nozzle (10), and is configured to spray the fluid material onto a side surface of a wall body of the printed object extruded from the nozzle (10).
2. The 3D printer for construction of claim 1, wherein a rotatable body (30) is installed on the movable body (20), the rotatable body (30) having an axis of rotation parallel to a discharge direction of the nozzle (10), and the support shaft (40) of the spray pipe (60) is connected to the rotatable body (30), such that as the rotatable body (30) rotates, the support shaft (40) and the spray pipe (60) move along a circular are centered on the axis of rotation.
3. The 3D printer for construction of claim 2, further comprising: a planar rotatable plate (70) connected to the rotatable body (30); the elevating body (41) connected to the planar rotatable plate (70); and an elastic body (73) connected to the rotatable body (30), wherein the support shaft (40) of the spray pipe (60) is connected to the elevating body (41), and wherein the one end of the planar rotatable plate (70) is hinged to the rotatable body (30) and the other end of the planar rotatable plate (70) is connected to the rotatable body (30) via an elastic body (73), such that as the elastic body (73) is stretched or contracted, the planar rotatable plate (70) rotates on a plane.
4. The 3D printer for construction of claim 2, wherein a planar rotatable plate (70) is connected to the rotatable body (30), a roller (50) being mounted in one end of the planar rotatable plate (70), such that an inside of the planar rotatable plate (70) is hinged to the rotatable body (30); the other end of the planar rotatable plate (70) is connected to the rotatable body 30 via an elastic body (73), such that as the elastic body (73) is stretched or contracted, the planar rotatable plate (70) rotates on a plane; and the roller (50) is in close contact with a surface of the printed object.
5. The 3D printer for construction of claim 2, wherein an annular rack (35) is installed on the rotatable body (30), the annular rack (35) having a planar center that coincides with the axis of rotation of the rotatable body (30); and a pinion (25) is installed on the movable body (20), the pinion (25) being connected to a driving motor (23) and engaged with the rack (35), wherein as the pinion (25) rotates, the rack (35) and the rotatable body (30) rotates.
6. A printed object surface-treatment type 3D printer for construction, comprising: a movable body (20); a nozzle (10) mounted on the movable body (20); a spray pipe (60) configured to follow the nozzle (10); and a plurality of spray holes (61) mounted on the spray pipe (60), wherein the nozzle (10) is configured to discharge a fluid material, wherein the spray pipe (60) is configured to move along with movement of the movable body (20) and the nozzle (10), wherein the spray pipe (60) is connected to the movable body (20) via a support shaft (40), an elevating body (41) and a rotatable body 30, wherein a range between the spray pipe (60) and a printed object is adjusted as the spray pipe (60) is lifted or lowered along with the support shaft (40) being lifted or lowered by the elevating body (41) connected to an upper end of the support shaft (40), wherein the plurality of spray holes (61) are mounted on the spray pipe (60) in a direction perpendicular to the discharge direction of the fluid material from the nozzle (10), and is configured to spray the fluid material onto a side surface of a wall body of the printed object extruded from the nozzle (10), and wherein a protruded plate (31) protruding outwardly from the periphery of the rotatable body (30) is utilized as an installation site for the spray pipe (60) on the rotatable body (30), wherein in mounting the spray pipe (60) on the protruded plate (31) of the rotatable body (30), an elongated hole is created in the protruded plate (31) and the elevating body (41) is mounted in this elongated hole, such that by adjusting a mounting position of the elevating body (41) in the elongated hole, the planar distance between the center point of the spray pipe (60) and the center point of the nozzle (10) is controlled.
7. The 3D printer for construction of claim 1, wherein a rotatable body (30) is installed on the movable body (20), the rotatable body (30) having an axis of rotation parallel to a discharge direction of the nozzle (10), and the support shaft (40) of the spray pipe (60) is connected to the rotatable body (30), such that as the rotatable body (30) rotates, the support shaft (40) and the spray pipe (60) move along a circular are centered on the axis of rotation.
8. The 3D printer for construction of claim 7, further comprising: a planar rotatable plate (70) connected to the rotatable body (30); the elevating body (41) connected to the planar rotatable plate (70); and an elastic body (73) connected to the rotatable body (30), wherein the support shaft (40) of the spray pipe (60) is connected to the elevating body (41), and wherein the one end of the planar rotatable plate (70) is hinged to the rotatable body (30) and the other end of the planar rotatable plate (70) is connected to the rotatable body (30) via an elastic body (73), such that as the elastic body (73) is stretched or contracted, the planar rotatable plate (70) rotates on a plane.
9. The 3D printer for construction of claim 7, wherein a planar rotatable plate (70) is connected to the rotatable body (30), a roller (50) being mounted in one end of the planar rotatable plate (70), such that an inside of the planar rotatable plate (70) is hinged to the rotatable body (30); the other end of the planar rotatable plate (70) is connected to the rotatable body 30 via an elastic body (73), such that as the elastic body (73) is stretched or contracted, the planar rotatable plate (70) rotates on a plane; and the roller (50) is in close contact with a surface of the printed object.
10. The 3D printer for construction of claim 7, wherein an annular rack (35) is installed on the rotatable body (30), the annular rack (35) having a planar center that coincides with the axis of rotation of the rotatable body (30); and a pinion (25) is installed on the movable body (20), the pinion (25) being connected to a driving motor (23) and engaged with the rack (35), wherein as the pinion (25) rotates, the rack (35) and the rotatable body (30) rotates.
Description
DESCRIPTION OF DRAWINGS
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MODE FOR INVENTION
(13) The configuration and mechanism of the present invention will be described in detail with reference to the accompanied drawings below.
(14) First of all,
(15) In particular, the self-propelled gantry crane-type frame 90 may be applied as a basic framework of the 3D printer, wherein forward and backward motions of the self-propelled frame 90 in a longitudinal direction give a forward F motion or a backward B motion to the movable body 20 mounted with the nozzle 10, vertical movement of the movable body 20 is carried out by the rail 92 liftably mounted on the frame 90, and as the movable body 20 travels along the rail 92 in a lateral direction, left L movement or right R movement of the nozzle 10 is carried out.
(16) As shown in
(17) In particular, the nozzle 10 mounted on the movable body 20 may be configured to discharge below the movable body 20 a fluid material e.g., concrete and mortar so as to allow a linear extrudate forming each printed layer to be stacked along a moving path of the movable body 20 to thereby form a desired structure. As shown in
(18) As such, movement of the movable body 20 is carried out by the self-propelled frame 90 and the rail 92 in the embodiments illustrated in the drawings; however, if the movable body 20 mounted with the nozzle 10 is allowed to move freely in vertical and lateral directions, various types such as a jib crane, may be applied as a main body of the 3D printer for construction of the present invention.
(19) As shown in
(20) As shown in
(21) Here, examples of the liquid material sprayed onto the printed object may include various coating liquids, reinforcing chemicals, and the like, as well as water for wetting the surface of the printed object.
(22) In particular, the spray pipe 60 as a straight-pipe body may be installed parallel to the direction in which the nozzle 10 discharges the fluid material, such that liquid material is sprayed via the spray pipe 60 and spray holes 61 onto the surface of a printed object formed by stacking of linear extrudates discharged from the nozzle 10.
(23) As can be seen in
(24) As illustrated in
(25) Examples of the elevating body 41 may include a fluid pressure cylinder such as a hydraulic cylinder and a pneumatic cylinder, and an axial moving device or telescopic device, such as a linear actuator. Since the printed object-facing range of the spray pipe 60 is adjusted by driving the elevating body 41, the coating range of the liquid material may be flexibly adjusted depending on the state of stacking or material characteristics of the printed object.
(26) In addition, as shown in
(27) In the illustrated embodiment, mounting of the spray pipe 60 on the rotatable body 30 has a structure in which an upper end of the elevating body 41 described above is mounted on a peripheral portion of the rotatable body 30 and the support shaft 40 is connected to a lower end of the elevating body 41, wherein an upper end of the spray pipe 60 is connected to the support shaft 40.
(28) In addition, as shown in the illustrated embodiment, a protruded plate 31 protruding outwardly from the periphery of the rotatable body 30 may be utilized as an installation site for the spray pipe 60 on the rotatable body 30. In particular, as shown in
(29) As described above, by controlling the distance between the center point of the spray pipe 60 and the center point of the nozzle 10, a flexible adjustment may be made to the position of the spray pipe 60 even when the planar width of the printed object varies due to a change in the diameter of discharge holes or a change in the discharge speed of the nozzle 10.
(30) The planar rotation and arc movement of the rotatable body 30 with respect to the movable body 20 of the 3D printer for construction of the present invention may be realized as illustrated in
(31) Here, the mutually rotatable connection of the movable body 20 and the rotatable body 30 as shown in
(32) Consequently, the present invention may be regarded as having a structure in which the nozzle 10, the main body of the movable body 20, the rotatable body 30, and the annular rack 35 are all joined or installed so as to be concentric on a plane, and as the pinion 25 engaging with the rack 35 is rotated by the driving motor 23 affixed to the movable body 20, the rotatable body 30 and components mounted thereon, such as the spray pipe 60, are made to rotate or move along a circular arc on a plane.
(33) The rotation direction and speed of the rotatable body 30 mounted with the spray pipe 60 may be varied by factors such as forward rotation, reverse rotation, or an increase or decrease in the rotation speed of the driving motor 23. Such control over the driving motor 23 and the rack 35 may be automatically performed by a control panel or a computing controller connected to the driving motor 23.
(34) In particular, this planar rotating motion of the spray pipe 60 as shown in
(35) In addition,
(36) In this double-side treatment type embodiment, a rotatable body 30 on which a spray pipe 60 is mounted may be provided for each spray pipe 60. As shown in
(37) In the embodiment illustrated in
(38) Illustrated in
(39) In particular, as shown in
(40) In the illustrated embodiment, the planar rotatable plate 70 is a plate body having a bent central portion, and by a hinge configured in the central portion, the rotatable body 30 and the rotatable plate 70 are connected to each other in a freely rotatable manner with respect to a hinge axis parallel to the nozzle 10.
(41) In addition, as shown in
(42) The elastic body 73 for connecting the rotatable plate 70 and the rotatable body 30 may utilize an axial changing or moving device, such as a fluid pressure cylinder, and the distance between the outer circumferential surface of the spray pipe 60 mounted in the rotatable plate 70 and the central line of the printed object may be adjusted by varying the plane angle of the rotatable plate 70.
(43) Accordingly, via components related to the rotatable plate 70, stable movement of a following spray pipe 60 around a linearly changing section of a printed object may be made possible, and furthermore, by supplying different liquid materials to a preceding spray pipe 60 and the following spray pipe 60, as needed, sequential applications of different liquid materials may be carried out.
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(45) That is, as shown