High torque transmission
10598254 ยท 2020-03-24
Assignee
Inventors
Cpc classification
B25B17/02
PERFORMING OPERATIONS; TRANSPORTING
F16H55/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B25B17/02
PERFORMING OPERATIONS; TRANSPORTING
F16H55/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A worm drive has a worm and a worm wheel. Meshing assemblies are formed about the worm wheel each comprising a ball and a cup receiving a portion of the ball. Each cup is orientated at an acute angle toward the worm drive relative to a periphery of the wheel. The worm presents a concavely tapering side profile complementing a peripheral portion of the worm wheel. Consequently portions of the balls mesh with the worm and are free to rotate and so reduce shear forces between the worm and the worm wheel in use.
Claims
1. A worm drive having a worm and a worm wheel, including: meshing assemblies comprising a plurality of balls and a plurality of reciprocal cups formed about the worm wheel each meshing assembly comprising one ball of the plurality of balls and one reciprocal cup of the plurality of reciprocal cups, each reciprocal cup having a concave surface and an opposing flat surface, the opposing flat surface having a concave socket complementary to a shape of the ball for receiving a portion of the ball such that a second portion of the ball faces outwardly from the cup to present a spherical face of the ball to the worm, wherein a center line of the cup of each meshing assembly extends through a center of the ball of the meshing assembly and a center of the concave socket of the meshing assembly, wherein the center line forms an acute angle with a tangent line of a periphery of said wheel where the center line intersects the periphery of said wheel; wherein the worm concavely tapers toward an end and presents a concavely tapering side profile complementing a peripheral portion of the worm wheel and wherein the worm comprises a concave track complementing the meshing assemblies, whereby the spherical faces of the balls mesh with the concave track of the worm and are free to rotate thereby reducing shear forces between the worm and the worm wheel in use; and, whereby in use the center line of the cup of each meshing assembly engaged with the worm is inclined toward the worm.
2. A worm drive according to claim 1, wherein the worm comprises at least one helical thread defining a track for the ball.
3. A worm drive according to claim 1, configured as a torque multiplier wherein a complete rotation of the worm causes a partial rotation of the worm wheel about an axis thereof.
4. A worm drive according to claim 1, wherein the worm meshes with at least three meshing assemblies of the worm wheel simultaneously.
5. A worm drive according to claim 3, wherein the worm includes a formation for ready coupling to a driving member.
6. A worm drive according to claim 5 configured as a torque wrench, wherein the worm wheel includes a socket to receive a head of a bolt.
7. A worm drive according to claim 2, configured as a torque multiplier wherein a complete rotation of the worm causes a partial rotation of the worm wheel about an axis thereof.
8. A worm drive according to claim 3, wherein the worm meshes with at least three meshing assemblies of the worm wheel simultaneously.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Preferred features, embodiments and variations of the invention may be discerned from the following Detailed Description which provides sufficient information for those skilled in the art to perform the invention.
(2) The Detailed Description is not to be regarded as limiting the scope of the preceding Summary of the Invention in any way. The Detailed Description will make reference to a number of drawings as follows:
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DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
(10) Referring now to
(11) It will be observed that meshing assemblies 9a, . . . , 9n of the worm wheel 5 are each comprised of integrally formed supports in the form of cups 11a, . . . , 11n. The cups each receive a ball 13a, . . . , 13n. In the presently described preferred embodiment each ball 13a, . . . , 13n is free to rotate in its respective cup.
(12) Each ball 13a, . . . , 13n has a surface area portion that faces outwardly from its respective cup 11a, . . . , 1n so as to present a spherical face to the worm 3.
(13) As best seen in
(14) Referring again to
(15) In the presently described preferred embodiment of the invention the track 23 meshes with four meshing assemblies 9a, . . . , 9d.
(16) Referring again to
(17) In the presently described preferred embodiment the worm drive 1 is configured as a socket wrench and so the worm wheel 5 includes a central socket 27 to rotate a head of a bolt in use. The worm drive 1 is configured as a torque multiplier wherein a complete rotation of the worm 3 causes a partial rotation of the worm wheel 5 about its axis.
(18) Referring to
(19) The largest diameter thread portion 15a (shown in
(20) As the worm 3 rotates it tracks one ball per one worm rotation. Consequently, if there are fifteen meshing assemblies about the worm wheel 5, as shown in
(21) As the faces of the balls 13a, . . . , 13n engage the largest diameter track portion 23a the balls 13a, . . . , 13n tend to rotate fastest within their respective cups 11a, . . . , 11n. This is due to the track portion 23a, which is towards the shank 4 of the worm 3, making a larger contact area with each spherical face of the balls 13a, . . . , 13n than is the case for the track portion 23n which is towards the smaller diameter tip 6 of the worm.
(22) As can be seen from
(23) With reference to
(24) Orientating the cups 11a, . . . , 11d at angle of attack .sub.3 subjects the balls 13a, . . . , 13n to compressive force, rather than shear force, from the track 23 of the worm 3. In this way the cups 11a, . . . , 11n do not wear on one side. The angling of the cups provides a single direction buttress support that minimizes the separation force experienced by conventional worm wheel drives. Angling the cups also aids the function of the worm drive 1 by providing for a very low separation force between the parent components, i.e. the worm and the worm wheel, while operating at an extreme torque. In this case allowing for the worm wheel 5 to carry the complete separation load without the requirement of other bearings.
(25) If, instead of using an angled cup a flat spherical cup that aligned to the circumference of the bearing wheel were used then the balls would be in shear loading and the cup would thus receive sideways force so that it would be unable to transmit the same high torque loads without high separation forces. These forces would deflect the worm wheel away from the worm and vice versa. Such an arrangement would result in high separation forces that are the same as found in other 90 degree drives where the pinion gear and the crown gear try to separate and as a result are very inefficient.
(26) In the previously described embodiments the balls have been free to rotate in the cups. However, the Inventors have found that it is possible to make the meshing assemblies with the ball 13 and cup 11 as a single solid piece as shown in
(27) While the exemplary worm drive has been described herein in the context of a torque wrench, as illustrated in
(28) It will be realised that the above description identifies at least one specific, substantial and credible use for the invention.
(29) In compliance with the statute, the invention has been described in language more or less specific to structural or methodical features.
(30) The term comprises and its variations, such as comprising and comprised of is used throughout in an inclusive sense and not to the exclusion of any additional features. It is to be understood that the invention is not limited to specific features shown or described since the means herein described comprises preferred forms of putting the invention into effect. The invention is, therefore, claimed in any of its forms or modifications within the proper scope of the appended claims appropriately interpreted by those skilled in the art.
(31) Throughout the specification and claims (if present), unless the context requires otherwise, the term substantially or about will be understood to not be limited to the value for the range qualified by the terms.
(32) Throughout the description and claims of this specification, the singular encompasses the plural unless the context otherwise requires. In particular, where the indefinite article is used, the specification is to be understood as contemplating plurality as well as singularity, unless the context requires otherwise.
(33) Features, integers, characteristics, compounds, chemical moieties or groups described in conjunction with a particular aspect, embodiment or example of the invention are to be understood to be applicable to any other aspect, embodiment or example described herein unless incompatible therewith.
(34) Any embodiment of the invention is meant to be illustrative only and is not meant to be limiting to the invention. Therefore, it should be appreciated that various other changes and modifications can be made to any embodiment described without departing from the spirit and scope of the invention.