Method for manufacturing impeller
10569454 ยท 2020-02-25
Assignee
Inventors
Cpc classification
B29C45/0053
PERFORMING OPERATIONS; TRANSPORTING
F04D29/281
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B29L2031/08
PERFORMING OPERATIONS; TRANSPORTING
B29C45/0081
PERFORMING OPERATIONS; TRANSPORTING
F05D2230/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/023
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2230/51
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B29C45/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Provided is a method for manufacturing an impeller composed of a frustum-shaped hub (11) and a plurality of blades provided on a peripheral surface (12) of the hub (11) at predetermined intervals in a circumferential direction and inclined in one direction. The method for manufacturing the impeller comprises: an injection-molding step of injection-molding a molding article (10a) in which the blades are connected to the periphery of the hub (11) via fragile connection parts (16) so as to spread outward; a blade rotationally moving step of rotationally moving the blades (13) to the peripheral surface (12) of the hub (11) about the connection parts (16); and a fixation step of fixing ends of the blades (13) to the hub (11).
Claims
1. A manufacturing method of an impeller comprising a truncated cone-shaped hub and a plurality of vanes provided on an outer circumferential surface of the hub at a predetermined interval in a circumferential direction and inclined in one direction, the method comprising: an injection molding step of injection-molding a molded article in a state where the vanes are connected to the outer circumferential surface of the hub through weakened connecting parts so as to spread outward; a vane rotational displacement step of rotationally displacing the vanes toward the outer circumferential surface of the hub around the connecting parts, and a fixing step of fixing ends of the vanes to the hub.
2. The manufacturing method of the impeller according to claim 1, wherein the impeller has a shape, among the plurality of vanes, in which vanes adjacent to each other in the axial direction mutually overlap.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DESCRIPTION OF EMBODIMENTS
(13) First, an embodiment of the present invention will be described below with reference to the accompanying drawings.
(14) As shown in
(15) By setting the number of the vanes 13 to fourteen (14) as being greater than the number of vanes of the impeller of the prior art and by arranging the adjacent vanes 13 so as to overlap each other in the axial direction, the performance of the impeller 10 can be improved.
(16) In the embodiment, the impeller 10 is a so-called diagonal flow fan in which the number of the vanes 13 is 14, but the present invention is not limited thereto. The number of the vanes 13 may be plural, such as 12, 16, etc. In addition, the adjacent vanes 13 may be shaped so as not to overlap each other in the axial direction. Further, the impeller 10 may be of a centrifugal type and may be a so-called sirocco fan with the vanes 13 facing forward or a so-called turbofan with the vanes 13 facing rearward. In addition, the outer circumferential surface 12 of the hub 11 may be slightly expanded outwardly or recessed inward as long as the hub 11 is substantially truncated cone-shaped.
(17) Next, the molded article obtained by injection molding will be explained.
(18) As shown in
(19) The vane 13 includes a bone 21 that is formed into a rod shape provided swingably on the connecting part 16, and a blade body 22 extending outward from the bone 21. The bone 21 has a shape that fits into the joining groove 17. The blade body 22 is slightly bent and presents an ideal shape for improving the performance of the impeller 10 when the bone 21 is fixed to the joining groove 17 to form the impeller 10 (see
(20) The shape of the blade body 22 is not limited to the embodiment, and may be appropriately changed in consideration of the performance of the entire impeller 10. Further, the shape and position of the joining groove 17 are not limited to the embodiment, and may be suitably changed in consideration of the performance of the entire impeller 10.
(21) Next, the mold and the injection molding process will be described.
(22) As shown in
(23) Since the adjacent vanes 13 of the molded article 10a do not overlap in the axial direction, there is no undercut portion in injection molding. Therefore, the mold 33 does not need a slide die. The hub 11 and the vanes 13 can be formed integrally only with the fixed die 31 and the movable die 32. As a result, it is possible to form the mold 33 having a compact and simple structure. In addition, since there is no need to take the slide die into consideration, it is possible to utilize the space in the mold 33 effectively, to increase the number of the vanes 13 and to form a large number of molded articles 10a at one time.
(24) Next, the vane rotational displacement step will be described.
(25) As shown in
(26) As shown in
(27) Next, the connecting part 16 will be described in detail.
(28) As shown in
(29) Although the weakened portion 18 is formed in a V-shape in the embodiment, it is not limited thereto, and it may be in a U-shape. A V-shaped or U-shaped recess may be formed on the upper and lower sides of the connecting part 16. Further, as long as the vanes 13 can be rotationally displaced with respect to the hub 11, the weakened portion 18 may be in a state similar to a point connection.
(30) Next, the fixing process and the operation of the impeller 10 will be described.
(31) As shown in
(32) Since the vanes 13 of the molded article 10a are rotationally displaced and fixed to the outer circumferential surface 12 of the hub 11 after injection molding, the shape of the vanes 13 and the angle of the vanes relative to the outer circumferential surface 12 (so-called blade winding angle) can be freely set. As a result, the impeller 10 with a desired shape can be obtained.
(33) Even if the shape of the impeller 10 is made such that the vanes 13 adjacent to each other in the axial direction mutually overlap and the shape of the impeller 10 is made complicated in order to improve the performance of the impeller 10, the mold 33 having a simple structure (see
(34) Next, another embodiment of the impeller 10 will be described. The same reference numerals are given to the same components as those shown in
(35) As shown in
(36) Next, a method of joining the vanes 13 in the impeller 10 of another embodiment will be described.
(37) As shown in
(38) A caulking member (not shown) is prepared. The abutting surface of the caulking member is formed in a shape along the inner circumferential surface of the hub 11. The caulking member is moved to the inner circumferential surface of the hub 11 so that the abutting surface abuts against the projecting portion 23.
(39) In this way, the caulking member caulks one projecting portion 23. By repeating this by the number of vanes 13, the vanes 13 are fixed to the hub 11. In this manner, the plurality of projecting portions 23 can be caulked by a general caulking method.
(40) When joining by caulking, the projecting portion 23 may be heated for heat caulking.
(41) Although the impeller manufacturing method of the present invention is applied to the impeller for a vehicular air conditioner in the embodiment, the impeller is not limited thereto and may be applicable to an impeller used in a general blower. The method of joining the vanes 13 to the joining grooves 17 is not limited to joining with an adhesive or joining by caulking, but the joining grooves 17 and the bones 21 may be joined in a connector shape. That is, there is no limitation on the joining method as long as the vane 13 can be fixed to the joining groove 17.
INDUSTRIAL APPLICABILITY
(42) The manufacturing method of the impeller of the present invention is suitable for an impeller for a vehicular air conditioner.
REFERENCE SIGNS LIST
(43) 10 . . . impeller, 10a . . . molded article, 11 . . . hub, 12 . . . outer circumferential surface of hub, 13 . . . vane, 16 . . . connecting part, 33 . . . mold