METHOD OF FORGING DOGS OF DOG CLUTCH AND DOGS OF DOG CLUTCH
20180257128 ยท 2018-09-13
Inventors
- Shuichi Shimizu (Toyohashi-shi, JP)
- Kazuhiro Maeda (Toyohashi-shi, JP)
- Mitsuhiko Yoshimura (Toyohashi-shi, JP)
Cpc classification
B21J5/12
PERFORMING OPERATIONS; TRANSPORTING
F16D2011/008
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2250/0023
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D11/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2500/10462
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D11/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B21J5/12
PERFORMING OPERATIONS; TRANSPORTING
F16D11/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A gear (10) is located inside a constant mesh gear transmission. The gear includes dogs (20) on a side surface thereof. Each of the dogs has a recess (30) in a distal surface (25) thereof.
Claims
1. A method of forging dogs of a dog clutch, the method comprising: a dog-shaping process in which the dogs are shaped so that underfills remain at distal corners surrounding a distal surface of each of the dogs, and a recess is formed in the distal surface of said each dog; and a finishing process in which the distal surfaces of the dogs are depressed, so that a material of the distal surface of each said dog is caused to flow into the distal corners of each said dog so as to fill the underfills of each said dog with the material.
2. The method of forging dogs of a dog clutch according to claim 1, wherein the dog-shaping process is carried out such that an area of a mouth of the recess in the distal surface of each said dog is formed within a range of 5% to 30% of an area of the distal surface.
3. The method of forging dogs of a dog clutch according to claim 1, wherein the dog-shaping process is carried out such that a mouth of the recess of each said dog becomes circular and the mouse of the recess becomes smaller toward a bottom of the recess.
4. The method of forging dogs of a dog clutch according to claim 2, wherein the dog-shaping process is carried out such that a mouth of the recess of each said dog becomes circular and the mouse of the recess becomes smaller toward a bottom of the recess.
5. The method of forging dogs of a dog clutch according to claim 1, wherein the finishing process is carried out to depress the distal surfaces such that the recesses remain in the distal surfaces.
6. The method of forging dogs of a dog clutch according to claim 2, wherein the finishing process is carried out to depress the distal surfaces such that the recesses remain in the distal surfaces.
7. The method of forging dogs of a dog clutch according to claim 3, wherein the finishing process is carried out to depress the distal surfaces such that the recesses remain in the distal surfaces.
8. The method of forging dogs of a dog clutch according to claim 4, wherein the finishing process is carried out to depress the distal surfaces such that the recesses remain in the distal surfaces.
9. The method of forging dogs of a dog clutch according to claim 1, wherein the dog-shaping process includes: a pre-shaping process for shaping the dogs so that the underfills remain at the distal corners of each said dog, and a recess-forming process for forming the recess in the distal surface of each said dog.
10. The method of forging dogs of a dog clutch according to claim 2, wherein the dog-shaping process includes: a pre-shaping process for shaping the dogs so that the underfills remain at the distal corners of each said dog, and a recess-forming process for forming the recess in the distal surface of each said dog.
11. The method of forging dogs of a dog clutch according to claim 3, wherein the dog-shaping process includes: a pre-shaping process for shaping the dogs so that the underfills remain at the distal corners of each said dog, and a recess-forming process for forming the recess in the distal surface of each said dog.
12. The method of forging dogs of a dog clutch according to claim 4, wherein the dog-shaping process includes: a pre-shaping process for shaping the dogs so that the underfills remain at the distal corners of each said dog, and a recess-forming process for forming the recess in the distal surface of each said dog.
13. The method of forging dogs of a dog clutch according to claim 5, wherein the dog-shaping process includes: a pre-shaping process for shaping the dogs so that the underfills remain at the distal corners of each said dog, and a recess-forming process for forming the recess in the distal surface of each said dog.
14. The method of forging dogs of a dog clutch according to claim 6, wherein the dog-shaping process includes: a pre-shaping process for shaping the dogs so that the underfills remain at the distal corners of each said dog, and a recess-forming process for forming the recess in the distal surface of each said dog.
15. The method of forging dogs of a dog clutch according to claim 7, wherein the dog-shaping process includes: a pre-shaping process for shaping the dogs so that the underfills remain at the distal corners of each said dog, and a recess-forming process for forming the recess in the distal surface of each said dog.
16. The method of forging dogs of a dog clutch according to claim 8, wherein the dog-shaping process includes: a pre-shaping process for shaping the dogs so that the underfills remain at the distal corners of each said dog, and a recess-forming process for forming the recess in the distal surface of each said dog.
17. Dogs of a dog clutch, comprising recesses formed in distal surfaces of the dogs.
18. The dogs of a dog clutch according to claim 17, wherein an area of a mouth of the recess in the distal surface of each said dog falls within a range of 5% to 30% of an area of the distal surface.
19. The dogs of a dog clutch according to claim 17, wherein the recess is a depression having a circular mouth, and the mouth becomes smaller toward a bottom of the depression.
20. The dogs of a dog clutch according to claim 18, wherein the recess is a depression having a circular mouth, and the mouth becomes smaller toward a bottom of the depression.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0032] Some exemplary embodiments of the present invention will be described in detail with reference to the appended drawings, in which:
[0033]
[0034]
[0035]
[0036]
[0037]
[0038]
[0039]
[0040]
[0041]
[0042]
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[0044]
[0045]
[0046]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0047] As shown in
[0048] Each of the dogs 20 has four wall surfaces 21 to 24 and a distal surface (front face) 25.
[0049] The four wall surfaces 21 to 24 are an outer wall surface 21, an inner wall surface 22, and a pair of side wall surfaces 23 and 24.
[0050] The distal surface 25 is a surface abutting on the distal ends of the wall surfaces 21 to 24, and is parallel to (including substantially parallel to) the side surface 12 of the gear 10.
[0051] A pair of wall surfaces 23 and 24 among the four wall surfaces are surfaces that engage with another gear when torque is transmitted, that is to say, so-called torque transmission surfaces.
[0052] The shape of the distal surface 25 of the dog 20 is not limited to a quadrangle or a trapezoid, and may be a circle. If the distal surface 25 has a circular shape, the wall surface is a cylindrical surface, and part of the cylindrical surface is a torque transmission surface.
[0053] As shown in
[0054] With reference to
[0055] As shown in
[0056] The form of the forging material 51 is arbitrary. A dog-shaping process to which the forging material 51 is subjected will be described with reference to
[0057] As shown in
[0058] The forging material 51 is subjected to forging with the use of the forging die 40. As a result, a dog 20 is obtained as shown in
[0059] If the radius R1 is large, forging is easy, and the load on the forging die 40 is reduced. On the other hand, the smaller the radius R1, the more forging pressure is needed, and the more strength is needed for the forging die 40. Accordingly, the radius R1 is appropriately determined in light of economic efficiency and the like. R1 is, for example, 0.5 mm.
[0060]
[0061] As shown in
[0062] The dog-shaping process described with reference to
[0063] The interim product 53 is subjected to a finishing process. The finishing process will be described with reference to
[0064] As shown in
[0065] When the distal surface 25 is depressed by the punch 54, the material on the distal surface 25 (the shaded section 55) is distributed toward the underfills 28 and the recess 30.
[0066] On the final stage of the finishing process, as shown in
[0067] The finishing process described with reference to
[0068] When the finishing process is applied to the interim product 53, relative dimensions (sizes) in the recess 30 shown in
[0069] As a result of test productions by the inventors, it was ascertained that the diameter W2 of the mouth of the recess 30 is preferable with respect to the width W1 of the dog 20 when the diameter W2 falls within a range of 25% to 55% of W1.
[0070] When a pressing load is applied to the shaded section 55 and the diameter W2 of the mouth is in excess of 55% of W1, the length of the shaded section 55 (the length of the shaded section 55 in contact with the punch 54) is small. Thus, the volume of the flowing material is excessive when the shaded section 55 is depressed with the pressing load. As a result, it is difficult to control the volume of the flowing material.
[0071] When a pressing load is applied to the shaded section 55 and the diameter W2 of the mouth is less than 25% of W1, then the shaded section 55 becomes longer. Thus, the volume of the flowing material is insufficient when the shaded section 55 is depressed.
[0072] Accordingly, the diameter W2 of the mouth of the recess 30 is within a range of 25% to 55% of the width W1 of the dog 20. When an error and the like are taken into consideration, it is more preferable that the diameter W2 of the mouth of the recess 30 be within a range of 30% to 40% of the width W1 of the dog 20.
[0073] W2/W1 is a length ratio. This will be converted into an area ratio.
[0074] If the distal surface 25 of the dog 20 is circular, the area corresponds to the square of the diameter.
[0075] If W2/W1=25%, the area ratio is calculated in such a manner that (the area of the mouth of the recess 30)/(the area of the distal surface 25)=0.25.sup.2=6.3%.
[0076] If W2/W1=30%, the area ratio is calculated in such a manner that (the area of the mouth of the recess 30)/(the area of the distal surface 25)=9%. If W2/W1=40%, the area ratio is calculated in such a manner that (the area of the mouth of the recess 30)/(the area of the distal surface 25)=16%. If W2/W1=55%, the area ratio is calculated in such a manner that (the area of the mouth of the recess 30)/(the area of the distal surface 25)=30%.
[0077] If the distal surface 25 of the dog 20 is square, the area of the mouth of the recess 30 is (/4)W2.sup.2, and the area of the distal surface 25 is W1.sup.2. Then, (the area of the mouth of the recess 30)/(the area of the distal surface 25) is equal to (/4)(W2/W1).sup.2.
[0078] If W2/W1=25%, the area ratio is calculated in such a manner that (the area of the mouth of the recess 30)/(the area of the distal surface 25)=(/4)0.25.sup.2=5%. Similarly, if W2/W1=30%, the area ratio is 7%. If W2/W1=40%, the area ratio is 13%. If W2/W1=55%, the area ratio is 24%.
[0079] Since the shape of the distal surface 25 is not limited to a particular shape, it is considered that the area of the mouth of the recess 30 in the distal surface 25 falls within a range of 5% to 30% of the area of the distal surface 25.
[0080] As described with reference to
[0081] The undesirable variation of filling density of the material affects the finishing accuracy of not only the recess 30 but also the distal corners 27.
[0082] With this respect, if the mouth of the recess 30 is circular, the filling density of the material can be uniform. It should be noted that if the mouth of the recess 30 is oval, occurrence of the undesirable variation of filling density of the material can be restricted, but it is more preferable that the mouth of the recess 30 be a precise circle as in this embodiment.
[0083] In the dog-shaping process described with reference to
[0084] The forging material 51 shown in
[0085] The first interim product 53A shown in
[0086] Teeth are formed on the outer periphery of the interim product 53 or the second interim product 53B that has been subjected to the finishing process, so that the gear 10 shown in
[0087] In the dog-shaping process (or the pre-shaping process), the dogs 20 are upraised in such a manner that the underfills 28 remain at the distal corners 27 of the dogs 20. Accordingly, even if the shaping load is relatively small, the dogs 20 can be upraised, so that the durability of the die is not deteriorated.
[0088] If the torque transmission surfaces 23 and 24 are in point or line contact with the other gear, breakage or abrasion is caused. Accordingly, plain surfaces should be ensured for the torque transmission surfaces.
[0089] In the embodiments of the present invention, the distal surface 25 of each dog has the recess 30. In the finishing process, when the distal surface 25 of each of the dogs 20 is depressed, there are no worries of bulging of the torque transmission surfaces 23 and 24 in the lateral directions of each dog 20 due to the existence of the recess 30. Since the torque transmission surfaces 23 and 24 of each dog 20 do not bulge in the lateral directions, the torque transmission surfaces 23 and 24 are ensured to be plain surfaces.