Sprocket for a synchronous drive belt system
10578202 ยท 2020-03-03
Assignee
Inventors
Cpc classification
F16H2055/086
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H55/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H7/023
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16H55/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H7/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A synchronous drive sprocket includes a generally annular body and a central axis extending through the generally annular body. The central axis defines circumferential, axial, and radial directions. The generally annular body has a peripheral edge and a plurality of recesses extending radially inward from the peripheral edge. The plurality of recesses define a plurality of circumferentially spaced teeth configured to receive mating teeth of a synchronous drive belt. Each tooth has an upper bearing surface and a notch extending radially inward from the peripheral edge of the tooth. Each notch is axially positioned such that the plurality of notches align with each other to collectively define a groove within the plurality of teeth. The groove extends circumferentially around at least a majority of the generally annular body and having a substantially continuous profile.
Claims
1. A synchronous drive sprocket comprising: a generally annular body and a central axis extending through the generally annular body, the central axis defining circumferential, axial, and radial directions, the generally annular body having a peripheral edge and a plurality of recesses extending radially inward from the peripheral edge, the plurality of recesses defining a plurality of circumferentially spaced teeth configured to receive mating teeth of a synchronous drive belt, each tooth having an upper bearing surface configured to bear against a synchronous drive belt and a notch extending radially inward from the peripheral edge of the tooth, each notch being axially positioned such that the plurality of notches align with each other to collectively define a groove within the plurality of teeth, the groove extending circumferentially around at least a majority of the generally annular body and having a substantially continuous profile, wherein the notch is a first notch and the groove is a first groove, each tooth further comprising a second notch axially spaced from the first notch, the second notch extending radially inward from the peripheral edge of the tooth, each second notch being axially positioned such that the plurality of second notches align with each other to collectively define a second groove within the plurality of teeth, the second groove extending circumferentially around at least a majority of the generally annular body and having a substantially continuous profile, and wherein the substantially continuous profile of the first groove is a first waveform and the substantially continuous profile of the second groove is a second waveform, different than the first waveform.
2. The synchronous drive sprocket as set forth in claim 1 wherein the generally annular body further comprises a central aperture coaxially aligned with central aperture and configured to receive a shaft.
3. The synchronous drive sprocket as set forth in claim 1 wherein each tooth has an axial tooth width and the generally annular body has an axial body width, the axial tooth width being less than the axial body width.
4. The synchronous drive sprocket of claim 1 wherein each notch has a notch depth and each recess has a recess depth, the recess depth of each recess being substantially equal to the notch depth of each notch.
5. A synchronous drive sprocket comprising: a generally annular body and a central axis extending through the generally annular body, the generally annular body having an exterior circumferential surface, the central axis defining circumferential, axial, and radial directions, the exterior circumferential surface being at least partially formed by a plurality of axially extending teeth, each tooth being circumferentially spaced from an adjacent tooth, each tooth having an upper bearing surface configured to bear against a synchronous drive belt and a notch, the plurality of notches cooperating to form a groove in the plurality of axially extending teeth, wherein the notch is a first notch and the groove is a first groove, each tooth further comprising a second notch axially spaced from the first notch, the plurality of second notches cooperating to form a second groove in the outer circumferential space of the generally annular body, the second groove having a substantially continuous profile, and wherein the substantially continuous profile of the first groove is a first waveform and the substantially continuous profile of the second groove is a second waveform, the first waveform being different from the second waveform.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(10) In the following description, various embodiments in accordance with the present disclosure will be described in further detail. For purposes of explanation, specific configurations and details are set forth in order to provide a thorough understanding of the provided embodiment. However, it will also be apparent to one skilled in the art that the embodiments may be practiced without the specific details. Furthermore, well-known features may be omitted or simplified in order not to obscure the embodiment being described.
(11) The disclosure described and suggested herein relates to a sprocket for a synchronous drive belt system. An embodiment of the sprocket is shown generally in FIGS. 1-8 and identified by numeral 100. The sprocket 100 is a synchronous drive sprocket including a generally annular body 102, a center hub 103, and a central axis 104. As best seen in
(12) The generally annular body central aperture 106 extends through the center hub 103 configured to receive a shaft (not shown). Thus, the central aperture 106 enables the sprocket 100 to be mounted to a shaft of a synchronous drive belt system. In one embodiment, the sprocket 100 may be mounted to the shaft directly via the central aperture 106. Alternatively, the sprocket 100 may be mounted to the shaft via the central aperture 106 and an additional component, such as, for example, a tapered bushing or tapered locking sleeve system (not shown). The central aperture may be tapered to receive the tapered bushing or tapered locking sleeve system. When the sprocket 100 is attached to a shaft of a synchronous drive belt system, the sprocket is rotatable in the circumferential direction about the central axis 104. The center hub 103 may protrude axially outward from the generally annular body 102 relative to the central axis 104. As seen in
(13) The generally annular body 102 of the sprocket 100 has a peripheral edge 108 (seen in
(14) As seen in
(15) The first notch 118 is axially spaced from the second notch 120. Each first notch 118 is axially positioned relative to the first notch of a circumferentially adjacent tooth such that the first notches collectively define a first circumferential groove 122 within the plurality of teeth. Accordingly, each first notch 118 is axially positioned such that the plurality of first notches align with each other to collectively define the first groove 122 within the plurality of teeth 114. Similarly, each second notch 120 is axially positioned relative to the second notch of a circumferentially adjacent tooth such that the second notches collectively define a second circumferential groove 124 within the plurality of teeth 114. Accordingly, each second notch is axially positioned such that the plurality of second notches align with each other to collectively define the second groove 124 within the plurality of teeth.
(16) As seen in
(17) The first and second grooves 122, 124 function to reduce the noise level associated with the operation of a synchronous drive belt system. During the operation of a synchronous drive belt system, acoustic noise is generated as a result of air that becomes partially entrapped as the teeth of the synchronous drive belt mesh with the teeth of the sprocket. The first and second grooves 122, 124 provide an additional pathway for air to escape as the teeth of the synchronous drive belt mesh with the teeth of the sprocket, thereby reducing the noise level associated with the synchronous drive belt system.
(18) The use of any and all examples, or exemplary language (e.g., such as) provided herein, is intended merely to better illuminate embodiments of the invention and does not pose a limitation on the scope of the invention unless otherwise claimed. No language in the specification should be construed as indicating any non-claimed element as essential to the practice of the invention.
(19) Further embodiments can be envisioned to one of ordinary skill in the art after reading this disclosure. In other embodiments, combinations or sub-combinations of the above-disclosed invention can be advantageously made. The example arrangements of components are shown for purposes of illustration and it should be understood that combinations, additions, re-arrangements, and the like are contemplated in alternative embodiments of the present invention. Thus, various modifications and changes may be made thereunto without departing from the broader spirit and scope of the invention as set forth in the claims and that the invention is intended to cover all modifications and equivalents within the scope of the following claims.