Bush
11131343 · 2021-09-28
Assignee
Inventors
Cpc classification
F02M26/72
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B29C45/4005
PERFORMING OPERATIONS; TRANSPORTING
F16C17/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2220/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C17/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M26/65
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2208/52
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M26/67
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16C33/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C17/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M26/67
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M26/65
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M26/72
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C17/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Provided is a resin bush capable of slidably supporting a shaft when the bush has been fitted in a housing; particularly, a resin bush suitable for use in an environment in which the effects of a difference in thermal expansion coefficients are likely to be prominent, such as a high-temperature environment, even when the housing and the shaft are made of a material such as a metal that has a different thermal expansion coefficient from that of the resin bush. In the resin bush (1), which is molded by extrusion molding, a slit (12) is formed from one axial end surface (11a) towards another axial end surface (11b). A recessed section (13) for a gate (a gate position), which is provided to the one axial end surface (11a), is provided in a position that is deviated from being symmetrical with the slit (12), at least with respect to a center axis O of a bush body (10). The resin used for the material of the bush (1) is a resin having excellent heat resistance and chemical resistance, such as PPS resin or a PEEK resin.
Claims
1. A bush for supporting slidably a shaft comprising: a cylindrical bush body: and a slit formed from one end surface at an axial end of the cylindrical bush body toward another end surface, wherein: the bush is produced by injection molding; a gate position is provided in the one end surface or in an outer peripheral surface at a position that is at least deviated from a position axisymmetric to the slit with respect to a central axis of the cylindrical bush body wherein: the bush further comprises a recessed portion for gate, which is formed at the gate position in the one end surface and a recessed portion for ejector pin seat, which is formed in the other end surface; connecting portions between a bottom surface and sidewalls of the recessed portion for gate are rounded, and the recessed portion for ejector pin seat is formed at position that is deviated in circumferential direction from the recessed portion for gate.
2. A resin bush for supporting slidably a shaft comprising: a cylindrical bush body; and a slit formed from one end surface at an axial end of the cylindrical bush body toward another end surface, wherein: the slit is formed to be inclined in relation to a central axis of the cylindrical bush body; the bush is produced by injection molding, a gate position is provided in the one end surface or in an outer peripheral surface at a position that is at least deviated from a position axisymmetric to the slit with respect to a central axis of the cylindrical bush body wherein: the bush further comprises a recessed portion for gate, which is formed at the gate position in the one end surface and a recessed portion for ejector pin seat, which is formed in the other end surface; connecting portions between a bottom surface and sidewalls of the recessed portion for gate are rounded; and the recessed portion for ejector pin seat is formed at position that is deviated in circumferential direction from the recessed portion for gate.
3. A bush of claim 1, wherein: the bush supports slidably the shaft in a state that the bush is fitted in a fitting hole of a housing; an outer peripheral surface of the cylindrical bush body is in contact with a fitting surface of the fitting hole of the housing; and an inner peripheral surface of the cylindrical bush body is in sliding contact with an outer peripheral surface of the shaft.
4. A bush of claim 2, wherein: the bush supports slidably the shaft in a state that the bush is fitted in a fitting hole of a housing; an outer peripheral surface of the cylindrical bush body is in contact with a fitting surface of the fitting hole of the housing; and an inner peripheral surface of the cylindrical bush body is in sliding contact with an outer peripheral surface of the shaft.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1)
(2)
(3)
(4)
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(6)
DESCRIPTION OF EMBODIMENT
(7) In the following, one embodiment of the present invention will be described.
(8)
(9) The bush 1 of the embodiment is used in an EGR device, and slidably supports a metallic shaft that drives an EGR valve in a state that the bush 1 is fitted in a metallic housing of the EGR device. Further, the bush 1 is formed by injection molding, and as illustrated in the figures comprises: a cylindrical bush body 10; a slit 12, which is formed from one surface 11a, axial end, of the bush body 10 to the other end surface 11b; a recessed portion 13 for gate, which is formed in the one end surface 11a at the axial end of the bush body 10; and recessed portions 14 for ejector pin seat, which are formed in the other axial end surface 11b of the bush body 10.
(10) The outer peripheral surface 15 of the bush body 10 comes in contact with a fitting surface of a fitting hole of the metallic housing of the EGR device, and the inner peripheral surface 16 of the bush body 10 comes in contact with the outer peripheral surface of the metallic shaft that drives the EGR valve.
(11) The slit 12 is formed from the one end surface 11a toward the other end surface 11b of the bush body 10 in such a way that the slit 12 is inclined in relation to the central axis O of the bush body 10.
(12) The recessed portion 13 for gate is formed at a gate position. This gate position is provided at a position that is at least deviated from an area (the part D illustrated in
(13) The recessed portions 14 for ejector pin seat are formed at ejector pin positions. These ejector pin positions are provided at positions deviated in the circumferential direction from the recessed portion 13 for gate. Further, each recessed portion 14 for ejector pin seat is rounded at connecting portions 142a and 142b between the bottom surface 140 and both sidewalls 141a and 141b (See
(14) As material of the bush 1 according to the present embodiment, is used resin that has thermostability to tolerate a high temperature environment (for example, temperature higher than or equal to 150 degrees Celsius) in which the EGR device is used and that is superior in resistance to nitric acid, sulfuric acid, and the like generated by reaction of nitrogen oxides and sulfur oxides in exhaust gas with water. As such resin, PPS resin and PEEK resin can be mentioned, for example.
(15) Since the bush 1 according to the present embodiment of the above-described arrangement can contract and expand in radial direction owing to the slit 12 formed from the one axial end surface 11a of the bush body 10 toward the other axial end surface 11b, the bush 1 can absorb difference in thermal expansion coefficient from the metallic shaft and the metallic housing of the EGR device. Accordingly, in a state of being fitted in the metallic housing of the EGR device, the bush 1 can slidably support more reliably the metallic shaft that drives the EGR valve.
(16) Further, in the bush 1 according to the present embodiment, the slit 12 is formed obliquely in relation to the central axis O of the bush body 10. Accordingly, in the circumferential direction, the inner peripheral surface 16 of the bush body 10 can come in sliding contact with the outer peripheral surface of the shaft, which is an object to be supported, over the whole periphery, and thus the bush 1 can slidably support more smoothly the shaft as the object to be supported.
(17) Further, in the bush 1 according to the present embodiment, the gate position (the recessed portion 13 for gate) is provided in the one surface 11a of end in the axial direction at a position at least deviated from the position (the part D illustrated in
(18) The present inventors performed structural analysis of test pieces 2A to 2D of the bush 1 illustrated in the following Table 1 (as for the measurements in the table, See
(19) TABLE-US-00001 TABLE 1 Test piece 2A (comparison example) 2B 2C 2D Gate position 0 degrees 15 degrees 30 degrees 45 degrees Recessed Seat width W1: 2 mm; Depth D1: 0.8 mm portion for gate Bush body Length L: 8 mm; Outer diameter M1: 11.5 mm; Inner diameter M2: 8 mm Slit Width T: 0.5 mm; Inclination R to the axial direction: 15 degrees Recessed Seat width W2: 2 mm; Depth D2: 0.8 mm portion for ejector pin seat
(20) In the Table 1, the gate position means an angle G (See
(21) TABLE-US-00002 TABLE 2 Analysis condition Linear static analysis; Element type: tetrahedral second order element Bush diameter contraction 0.68 mm quantity Bush material Elastic coefficient: 3800 characteristics (PPS resin) MPa; Poisson ratio: 0.37 Ambient temperature 23° C.
(22) As illustrated in
(23)
(24) From the results illustrated in
(25) Further, the present inventors performed flow analysis of the test pieces 2A to 2D of the bush 1 illustrated in the above Table 1. And, as illustrated in
(26) From the results of the above-described structural analysis and flow analysis, it is found that as the angle of the gate position G is larger, the strength of the bush 1 is enhanced, while there occurs a problem in moldability when the gate position G exceeds a certain angle. Accordingly, it is favorable from the viewpoint of strength of the bush 1 to increase the angle of the gate position G within the range causing no problem in moldability. In the above results, the angle of the gate position G was preferably larger than 0 degrees and smaller than 45 degrees. In particular, at the angle of 30 degrees, good results were obtained in both strength and moldability of the bush 1.
(27) Further, in the present embodiment, the connecting portions 132a and 132b between the bottom surface 130 and both sidewalls 131a and 131b of the recessed portion 13 for gate are rounded. Similarly, the connecting portions 142a and 142b between the bottom surface 140 and both sidewalls 141a and 141b of each recessed portion 14 for ejector pin seat are rounded. Accordingly, it is possible to improve strength of the connecting portions 132a, 132b, 142a, 142b of these recessed portions 13, 14, and the strength of the bush 1 can be improved furthermore.
(28) Further, in the present embodiment, at positions deviated in the circumferential direction from the recessed portion 13 for gate formed in the one end surface 11a of the bush body 10, there are formed the recessed portions 14 for ejector pin seat formed in the other end surface 11b of the bush body 10. Accordingly, it is possible to prevent forming of a part that is short in length in the axial direction in the bush body 10 owing to overlapping of a recessed portion 14 for ejector pin seat with the recessed portion 13 for gate in position in the circumferential direction.
(29) The present invention is not limited to the above embodiment, and can be varied variously within the scope of the invention.
(30) For example, although in the above embodiment the slit 12 is formed from the one end surface 11a of the bush body 10 toward the other end surface 11b in such away that the slit 12 is inclined in relation to the central axis O of the bush body 10, the present invention is not limited to this. The slit 12 can be formed in parallel with the central axis O of the bush body 10.
(31) Further, in the above embodiment, although the gate position is provided in the one end surface 11a, in the axial direction, of the bush body 10, the present invention is not limited to this. The gate position can be provided in the outer peripheral surface 15 of the bush body 10. In this case also, the gate position is provided at a position that is at least deviated from an area axisymmetric to the slit with respect to the central axis O of the bush body 10. It is not necessary to form a recessed portion 13 for gate in the one end surface 11a, in the axial direction, of the bush main body 10.
(32) The present embodiment has been described taking, as an example, the bush 1 used in an EGR device, the present invention is not limited to this. The bush of the present invention can be applied to bushes used in various fields for supporting slidably an object to be supported, and in particular suitable for cases where a bush slidably supports a metallic shaft in a state that the bush is fitted in a metallic housing.
(33) Further, in the present embodiment, as the material of the bush 1, is used resin that is superior in heat resistance and chemical resistance such as PPS resin, PEEK resin, or the like. This assumes that the bush 1 is used in an EGR device. The material of the bush of the present invention can be resin having characteristics suitable for its use, and it is also possible to add an additive for improving slidability.
REFERENCE SIGNS LIST
(34) 1: bush; 10: bush body; 11a, 11b: axial end surface of the bush body 10; 12: slit; 13: recessed portion for gate; 14: recessed portion for ejector pin seat; 15: outer peripheral surface of the bush body 10; 16: inner peripheral surface of the bush body 10; 130: bottom surface of the recessed portion 13 for gate; 131a, 131b: sidewall of the recessed portion 13 for gate; 132a, 132b: connecting portion of the recessed portion 13 for gate; 140: bottom surface of the recessed portion 14 for ejector pin seat; 141a, 141b: sidewall of the recessed portion 14 for ejector pin seat; and 142a, 142b: connecting portion of the recessed portion for ejector pin seat.