TOOLING AND METHOD FOR FABRICATING HELICAL SECTOR GEAR AND RELATED HELICAL SECTOR GEAR
20220412444 ยท 2022-12-29
Inventors
Cpc classification
B22F5/08
PERFORMING OPERATIONS; TRANSPORTING
F16H55/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H55/17
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B22F2003/031
PERFORMING OPERATIONS; TRANSPORTING
B22F2003/033
PERFORMING OPERATIONS; TRANSPORTING
B22F3/03
PERFORMING OPERATIONS; TRANSPORTING
International classification
F16H55/17
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B22F3/03
PERFORMING OPERATIONS; TRANSPORTING
B22F5/08
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A helical sector gear having a body and a gear segment having a plurality of helical teeth. The gear segment has a toothed sector, on which all of the helical teeth are formed, and spacing segments on the opposite circumferential ends of the toothed sector. Each of the spacing segments has a circumferential surface, which is longer than a pitch of the helical teeth, and a radial surface that is formed in a helical manner that conforms to the helix angle of helical teeth. A die set for forming the helical sector gear and a related method are also provided.
Claims
1. A helical sector gear comprising: a sector gear body that is disposed about a central axis; and a gear segment coupled to the sector gear body and extending radially therefrom, the gear segment having a plurality of helical teeth, the gear segment having a first spacing segment, a second spacing segment and a toothed sector that is disposed circumferentially between the first and second spacing segments and on which all of the helical teeth are formed, each of the helical teeth extending over a predetermined width of the gear segment and having a root that is spaced radially from the central axis by a predetermined root dimension, the first spacing segment consisting of a first helical land having a first circumferential surface and a first radial surface, the first circumferential surface extending radially from the central axis by a first dimension, the first radial surface extending radially between the sector gear body and the first circumferential surface, the first radial surface having a first helical contour that conforms to a helix angle of the helical teeth, the second spacing segment consisting of a second helical land having a second circumferential surface and a second radial surface, the second circumferential surface extending radially from the central axis by a second dimension, the second radial surface extending radially between the sector gear body and the second circumferential surface, the second radial surface having a second helical contour that conforms to the helix angle of the helical teeth.
2. The helical sector gear of claim 1, wherein a plurality of circumferentially extending grooves are formed in a surface of the sector gear body, the circumferentially extending grooves being spaced circumferentially apart from one another.
3. The helical sector gear of claim 1, wherein the first circumferential surface has a length that is greater than or equal to a pitch of the helical teeth.
Description
DRAWINGS
[0011] The drawings described herein are for illustrative purposes only of selected embodiments and not all possible implementations, and are not intended to limit the scope of the present disclosure.
[0012]
[0013]
[0014]
[0015]
[0016]
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
[0023] Corresponding reference numerals indicate corresponding parts throughout the several views of the drawings.
DETAILED DESCRIPTION
[0024] With reference to
[0025] The gear segment 22, which has a plurality of helical teeth 30, can be coupled to the sector gear body 20 in any desired manner and can extend radially therefrom. In the example provided, the gear segment 22 is integrally and unitarily formed with the sector gear body 20 from a suitable material, such as a powdered metal material that has been consolidated. The gear segment 22 has a first spacing segment 34, a second spacing segment 36 and a toothed sector 38 that is disposed circumferentially between the first and second spacing segments 34 and 36 and on which all of the helical teeth 30 are formed. Each of the helical teeth 30 extends over a predetermined width of the gear segment 22 and has a root 40 that is spaced radially from the central axis 24 by a predetermined root dimension 42.
[0026] The first spacing segment 34 consists of a first helical land 50 having a first circumferential surface 52 and a first radial surface 54. The first circumferential surface 52 extends radially from the central axis 24 by a first dimension 56. In the example shown, the first dimension 56 is less than or equal to the predetermined root dimension 42, but it will be appreciated that the first dimension 56 could be different from that which is shown. For example, the first dimension 56 could be equal to the outer radius of the helical teeth 30 (i.e., a distance between the central axis 24 and a top land of one of the helical teeth 30). The first circumferential surface 52 has a (circumferential) length that is greater than or equal to a pitch of the helical teeth 30. The first radial surface 54 extends radially between the sector gear body 20 and the first circumferential surface 52. The first radial surface 54 has a first helical contour (i.e., a flat plane warped in a helical manner) that conforms to a helix angle of the helical teeth 30.
[0027] The second spacing segment 36 consists of a second helical land 60 having a second circumferential surface 62 and a second radial surface 64. The second circumferential surface 62 extends radially from the central axis 24 by a second dimension 66. In the example shown, the second dimension 66 is less than or equal to the predetermined root dimension 42, but it will be appreciated that the second dimension 66 could be different from that which is shown. For example, the second dimension 66 could be equal to the outer radius of the helical teeth 30 (i.e., a distance between the central axis 24 and a top land of one of the helical teeth 30). The second circumferential surface 62 has a (circumferential) length that is greater than or equal to a pitch of the helical teeth 30. The second radial surface 64 extends radially between the sector gear body 20 and the second circumferential surface 62. The second radial surface 64 has a second helical contour (i.e., a flat plane warped in a helical manner) that conforms to the helix angle of the helical teeth 30.
[0028] With reference to
[0029] With reference to
[0030] The second die spacing segment 136 consists of a second helical die land 160 having a second circumferential die surface 162 and a second radial die surface 164. The second circumferential die surface 162 extends radially from the central axis 24 by the second dimension 66. The second radial die surface 164 extends radially inward from the second circumferential die surface 162. The second radial die surface 164 has a second helical die contour (i.e., a flat plane warped in a helical manner) that conforms to the helix angle of the helical die teeth 130.
[0031] With reference to
[0032] The first upper punch spacing segment 234 can consists of a first helical upper punch land 250 having a first circumferential upper punch surface 252 and a first radial upper punch surface 254. The first circumferential upper punch surface 252 extends radially from the central axis 24 by the first dimension 56 (
[0033] Similarly, the second upper punch spacing segment 236 consists of a second helical upper punch land 260 having a second circumferential upper punch surface 262 and a second radial upper punch surface 264. The second circumferential upper punch surface 262 extends radially from the central axis 24 by the second dimension 66 (
[0034] With reference to
[0035] The gear tooth compacting portion 302 can be formed onto or project axially from a sleeve or sleeve segment that can be disposed about the body compacting portion 300. In the example provided, the gear tooth compacting portion 302 extends through a slotted aperture 330 formed in the body compacting portion 300. The gear tooth compacting portion 302 can have a plurality of helical lower punch teeth 430 that are configured to matingly engage the helical die teeth 130 in the die 102.
[0036] With reference to
[0037] The first lower punch spacing segment 434 can consist of a first helical lower punch land 450 having a first circumferential lower punch surface 452 and a first radial lower punch surface 454. The first circumferential lower punch surface 452 extends radially from the central axis 24 by the first dimension 56 (
[0038] Similarly, the second lower punch spacing segment 436 consists of a second helical lower punch land 460 having a second circumferential lower punch surface 462 and a second radial lower punch surface 464. The second circumferential lower punch surface 462 extends radially from the central axis 24 by the second dimension 66 (
[0039] The core rod 108 can extend through the body compacting portion 300 and is configured to form the central aperture 26 (
[0040] With renewed reference to
[0041] In the operation of the die set 100, the upper punch assembly 104 can be fully retracted from the die 102 to permit access to the die cavity 110, the lower punch assembly 106 can be moved along the central axis 24 to a partly retracted position in which portions of both the body compacting portion 300 and the gear tooth compacting portion 302 are disposed in the die cavity 110 and engaged with associated portions of the interior circumferential die surface 112, and the core rod 108 can be disposed within the die cavity 110. An appropriate material can be loaded into the die cavity 110, such as a predetermined mass of a desired powdered metal material. Thereafter, the upper ram 502 and the first and second lower rams 508 and 510 may be operated to drive the upper punch assembly 104 and the lower punch assembly 106 into the die cavity 110. At an appropriate point in the operation of the die set 100 (e.g., during the loading of material into the die cavity 110, or prior to receipt of the upper punch assembly 104 in the die cavity 110), the core rod 108 can be received into a core rod aperture 520 that is formed into the upper punch assembly 104.
[0042] It will be appreciated that contact between the first and second upper punch spacing segments 234 and 236 (
[0043] Similarly, it will be appreciated that contact between the contact between the first and second lower punch spacing segments 434 and 436 (
[0044] The upper ram 502 and the first and second lower rams 508 and 510 can be translated toward one another to compact the powdered metal in the die cavity 110 between the upper and lower punch assemblies 104 and 106 to a desired extent and thereby form the helical sector gear 10 (
[0045] Those of skill in the art will appreciate that while the helical teeth 30 (
[0046] The foregoing description of the embodiments has been provided for purposes of illustration and description. It is not intended to be exhaustive or to limit the disclosure. Individual elements or features of a particular embodiment are generally not limited to that particular embodiment, but, where applicable, are interchangeable and can be used in a selected embodiment, even if not specifically shown or described. The same may also be varied in many ways. Such variations are not to be regarded as a departure from the disclosure, and all such modifications are intended to be included within the scope of the disclosure.