ADJUSTABLE ANGLE INVOLUTE GEAR
20170074377 ยท 2017-03-16
Assignee
Inventors
Cpc classification
F16H1/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E06B9/42
FIXED CONSTRUCTIONS
F16H55/0813
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H1/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E06B9/56
FIXED CONSTRUCTIONS
International classification
F16H35/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H1/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An involute gear is disclosed. A circular base has a surface that includes an inner region and an outer region. A gear tooth extends outward from the outer region of the surface. A shape of the gear tooth is defined by a varying cross-sectional involute profile. Starting from a first involute profile that is in a plane parallel to the surface of the circular base and extending outward from a center of the circular base, each location on the first involute profile is rotated about a corresponding axis while traversing a path defined by a corresponding imaginary ray extending from the center of the circular base to that location in the first involute profile. The corresponding axis is tangential to an imaginary circle that encompasses the inner region of the surface and is perpendicular to the corresponding imaginary ray
Claims
1. An involute gear, comprising: (a) a circular base having a surface that includes an inner region and an outer region; and (b) a gear tooth extending outward from the outer region of the surface, a shape of the gear tooth being defined by a varying cross-sectional involute profile, wherein starting from a first involute profile that is in a plane parallel to the surface of the circular base and extends outward from a center of the circular base, each location on the first involute profile is rotated about a corresponding axis while traversing above a path defined by a corresponding imaginary ray extending from the center of the circular base to that location in the first involute profile, the corresponding axis being tangential to an imaginary circle that encompasses the inner region of the surface and perpendicular to the corresponding imaginary ray.
2. The involute gear of claim 1, wherein the involute gear is a bevel gear.
3. The involute gear of claim 1, wherein the involute gear is rotatable about a central axis that is perpendicular to the surface of the circular base.
4. The involute gear of claim 1, wherein the inner region of the surface is planar.
5. The involute gear of claim 1, wherein the outer region of the surface curves around the imaginary circle.
6. The involute gear of claim 1, wherein the cross-section has a length that remains fixed as each location on the involute outer profile is rotated about it corresponding axis.
7. The involute gear of claim 1, further comprising: (a) a plurality of gear teeth extending outward from the outer region of the surface and being evenly spaced apart from each other along a plurality of locations on the outer region of the surface, the shape of each gear tooth being defined by a varying cross-sectional involute profile, wherein starting from a first involute profile that is in a plane parallel to the surface of the circular base and extends outward from a center of the circular base, each location on the first involute profile is rotated about a corresponding axis while traversing above a path defined by a corresponding imaginary ray extending from the center of the circular base to that location in the first involute profile, the corresponding axis being tangential to an imaginary circle that encompasses the inner region of the surface and perpendicular to the corresponding imaginary ray.
8. The involute gear of claim 7, wherein the involute gear is a bevel gear.
9. The involute gear of claim 7, wherein a length of the cross-section of each gear tooth remains fixed as each location on the involute profile of that gear tooth is rotated about its corresponding axis.
10. An involute gear, comprising: (a) a circular base having a surface that includes a planar inner region and an outer region that curves away from the inner region; and (b) a plurality of gear teeth extending outward from the outer region of the surface and being evenly spaced apart from each other along a plurality of locations on the outer region of the surface, the shape of each gear tooth being defined by a varying cross-sectional involute profile, wherein starting from a first involute profile that is in a plane parallel to the surface of the circular base and extends outward from a center of the circular base, each location on the first involute profile is rotated about a corresponding axis while traversing above a path defined by a corresponding imaginary ray extending from the center of the circular base to that location in the first involute profile, the corresponding axis being tangential to an imaginary circle that encompasses the inner region of the surface and perpendicular to the corresponding imaginary ray.
11. An involute gear system, comprising: (a) first and second involute gears, each including: (i) a circular base having a surface that includes an inner region and an outer region and that is rotatable about a central axis that is perpendicular to a center of the surface; and (ii) a gear tooth extending outward from the outer region of the surface, a shape of the gear tooth being defined by a varying cross-sectional involute profile, wherein starting from a first involute profile that is in a plane parallel to the surface of the circular base and extends outward from a center of the circular base, each location on the first involute profile is rotated about a corresponding axis while traversing above a path defined by a corresponding imaginary ray extending from the center of the circular base to that location in the first involute profile, the corresponding axis being tangential to an imaginary circle that encompasses the inner region of the surface and perpendicular to the corresponding imaginary ray; (b) a first pivot coupled to the first involute gear such that the entire first involute gear is movable in a same direction at least within a first range of angles about the first pivot; and (c) a second pivot coupled to the second involute gear such that the entire second involute gear is movable in a same direction at least within a second range of angles about the second pivot; (d) wherein the first and second pivots are arranged relative to each other and relative to first and second involute gears, respectively, such that for any angle within the first range of angles, the gear tooth of the first involute gear meshes with the gear tooth of the second involute gear at a corresponding angle within the second range of angles.
12. The involute gear system of claim 11, wherein each of the first and second involute gears further comprises: (a) a plurality of gear teeth extending outward from the outer region of the surface and being evenly spaced apart from each other along a plurality of locations on the outer region of the surface, the shape of each gear tooth being defined by a varying cross-sectional involute profile, wherein starting from a first involute profile that is in a plane parallel to the surface of the circular base and extends outward from a center of the circular base, each location on the first involute profile is rotated about a corresponding axis while traversing above a path defined by a corresponding imaginary ray extending from the center of the circular base to that location in the first involute profile, the corresponding axis being tangential to an imaginary circle that encompasses the inner region of the surface and perpendicular to the corresponding imaginary ray.
13. The involute gear of claim 11, wherein: (a) the first pivot is tangential to the imaginary circle of the first involute gear and is located at a first distance from the central axis of the first involute gear, (b) the second pivot is tangential to the imaginary circle of the second involute gear and is located at a second distance from the central axis of the second involute gear and is parallel to the first pivot.
14. The involute gear of claim 13, wherein a distance between the first pivot and the second pivot is fixed.
15. The involute gear of claim 13, wherein a first angle formed between the inner region of the surface of the first gear and a mid-plane perpendicular to and bisecting an imaginary line extending from the first pivot to the second pivot, and a second angle formed between the inner region of the surface of the second gear and the mid-plane, each have a same value.
16. An involute gear system, comprising: (a) first and second involute gears, each including: (i) a circular base having a surface that includes an inner region and an outer region and that is rotatable about a central axis that is perpendicular to a center of the surface; and (ii) a plurality of gear teeth extending outward from the outer region of the surface and being evenly spaced apart from each other along a plurality of locations on the outer region of the surface, the shape of each gear tooth being defined by a varying cross-sectional involute profile, wherein starting from a first involute profile that is in a plane parallel to the surface of the circular base and extends outward from a center of the circular base, each location on the first involute profile is rotated about a corresponding axis while traversing above a path defined by a corresponding imaginary ray extending from the center of the circular base to that location in the first involute profile, the corresponding axis being tangential to an imaginary circle that encompasses the inner region of the surface and perpendicular to the corresponding imaginary ray; (b) a first pivot coupled to the first involute gear and located tangential to the imaginary circle of the first involute gear at a first distance from the central axis of the first involute gear such that the entire first involute gear is movable in a same direction at least within a first range of angles about the first pivot; and (c) a second pivot parallel to the first pivot, the second pivot being coupled to the second involute gear and located tangential to the imaginary circle of the second involute gear at a second distance from the central axis of the second involute gear such that the entire second involute gear is movable in a same direction at least within a second range of angles about the second pivot; (d) wherein a distance between the first pivot and the second pivot is fixed, and (e) a first angle formed between the inner region of the surface of the first gear and a mid-plane perpendicular to and bisecting an imaginary line extending from the first pivot to the second pivot, and a second angle formed between the inner region of the surface of the second gear and the mid-plane, each have a same value, so that for any angle within the first range of angles, the gear tooth of the first involute gear meshes with the gear tooth of the second involute gear at a corresponding angle within the second range of angles.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWING
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DETAILED DESCRIPTION OF THE INVENTION
[0039] The present embodiments provide involute gears in which a pair of gears is capable of meshing at any of a range of gearing intersection angles. The shape of the gear teeth is defined by an involute outer profile that collapses inward with decreasing distance from the center of the gear.
[0040] Unless the context clearly requires otherwise, throughout the description and the claims, the words comprise, comprising, and the like are to be construed in an inclusive sense as opposed to an exclusive or exhaustive sense; that is to say, in the sense of including, but not limited to.
LIST OF REFERENCE NUMBERS FOR THE MAJOR ELEMENTS IN THE DRAWING
[0041] The following is a list of the major elements in the drawings in numerical order. [0042] 100 first involute gear [0043] 102 inner region (of first involute gear 100) [0044] 104 outer region (of first involute gear 100) [0045] 106 gear tooth (of first involute gear 100) [0046] 108 circular base (of first involute gear 100) [0047] 110 first surface (of first involute gear 100) [0048] 120 second involute gear 120 [0049] 122 inner region (of second involute gear 120) [0050] 124 outer region (of second involute gear 120) [0051] 126 gear tooth (of second involute gear 120) [0052] 128 circular base (of second involute gear 120) [0053] 130 first surface (of second involute gear 120) [0054] 208 imaginary circle [0055] 210 outer surface (of gear tooth) [0056] 212 involute outer profile (of gear tooth) [0057] 214 center of involute gear [0058] 216 width (of involute outer profile 212) [0059] 218 length (of involute outer profile 212) [0060] 220 axes of rotation (of locations on involute profile) [0061] 222 end portion (of involute outer profile 212) [0062] 224 imaginary rays (from center of involute gear to location on involute profile) [0063] 230a, 230b pivots [0064] 306 gear tooth [0065] 622 cross-section (of gear tooth 106) [0066] 624 cross-section (of gear tooth 126) [0067] 706 first angle [0068] 710 mid-plane [0069] 716 second angle [0070] 1000 mounting bracket [0071] 1010 first plate [0072] 1011 pivoting portion (of first plate 1010) [0073] 1012 back wall (of first plate 1010) [0074] 1014 side wall (of first plate 1010) [0075] 1015 interlocking end gears (of pivoting portion 1011) [0076] 1016 first pivot element [0077] 1018 top wall (of first plate 1010) [0078] 1020 second plate [0079] 1021 pivoting portion (of second plate 1020) [0080] 1022 back wall (of second plate 1020) [0081] 1024 wall mounting portion (of second plate 1020) [0082] 1025 interlocking end gears (of pivoting portion 1021) [0083] 1026 second pivot element [0084] 1028 top wall (of second plate 1020) [0085] 1030 back plate [0086] 1040 rotation mount (of first plate 1010) [0087] 1042 rotation mount (of second plate 1020) [0088] 1044 back side opening (of first gear 100) [0089] 1046 back side opening (of second gear 120) [0090] 1050 cut-away region (of top wall 1018) [0091] 1060 cut-away region (of top wall 1028) [0092] 1700 window shade system [0093] 1701 first window frame [0094] 1702 window frame head (of first window frame 1701) [0095] 1704 inner surface (of window frame head 1710) [0096] 1710 window shade roller (of first window frame 1701) [0097] 1712 window shade (of first window frame 1700) [0098] 1714 end bracket (of first window frame 1701) [0099] 1720 second window frame [0100] 1722 window frame head (of second window frame 1720) [0101] 1724 inner surface (of window frame head 1722) [0102] 1730 window shade roller (of second window frame 1720) [0103] 1732 window shade (of second window frame 1720) [0104] 1734 end bracket (of second window frame 1720)
MODE(S) FOR CARRYING OUT THE INVENTION
[0105] The embodiment described herein in the context of an involute gear system, but is not limited thereto, except as may be set forth expressly in the appended claims.
[0106] Referring first to
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[0108] Each gear tooth 106 of the involute gear 100 is disposed along the imaginary circle 208. The outer shape of the gear tooth 106 may be defined starting from an involute outer profile 212 which is shown in a plane parallel to the surface of the inner region 102 and extending outward from the center of the gear.
[0109] For each location on the involute outer profile 212, a corresponding imaginary ray 224 may be drawn from the center 214 of the gear to that location on the involute outer profile 212.
[0110] To define the outer profile of the gear tooth 106, each location on the involute outer profile 212 is rotated about its corresponding axis 220 while traversing a path defined by its corresponding imaginary ray 224.
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[0115] The second involute gear 120 includes a circular base 128 having an inner region 122 and an outer region 124 which comprise a first surface 130 of the second involute gear 120. Extending from the outer region 124 of the surface 130 are the plurality of gear teeth 126, each of which extends upwards, in part, and outwards, in part, from the surface. Though the first involute gear 100 and the second involute gear 120 are shown having a same diameter, other embodiments having first and second involute gears of unequal diameters are also within the scope of the disclosure.
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[0117] Additionally, in
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[0120] As depicted above,
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[0123] The bracket system 1000 incorporates, for example, the involute gears 100 and 120 described above which are rotatably mounted to brackets 1010 and 1020, respectively. The bracket 1010 may include a gear mounting portion 1012 and a wall mounting portion 1014 and is pivotally mounted about a pivot element 1016 to a back plate 1030. The bracket 1020 may include a gear mounting portion 1022 and a wall mounting portion 1024 and is pivotally mounted about a pivot element 1026 to the back plate 1030. The spacing of the pivots 1016 and 1026, and the angle relations of the surfaces of the involute gears 100 and 120 with a mid-plane (not shown) between pivots 1016 and 1026 comply with the conditions described above in connection with
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[0131] A window shade roller 1710 of the first window shade 1712 is rotatably attached to a window frame head 1702 of the first window frame 1701. The window shade roller 1710 is rotatably coupled at one end to an end bracket 1714 which is in turn affixed to the window frame head 1702 of the first window frame 1701. The window shade roller 1710 is attached at another end to an involute gear of the mounting bracket 1000.
[0132] A window shade roller 1730 of the second window shade 1732 is rotatably attached to a window frame head 1722 of the second window frame 1720. The window shade roller 1730 is rotatably attached at one end to an end bracket 1734 which is in turn affixed to the window frame head 1722 of the second window frame 1720. The window shade roller 1730 is attached at another end to another involute gear of the mounting bracket 1000.
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[0134] When one of the window shade rollers 1710, 1730 of the first window and second shades 1712, 1731 is rotated, such as using a motor (not shown), the end connected to one of the involute gears of the mounting bracket 1000 similarly rotates and causes the other involute gear to rotate, which in turn rotates the window shade roller attached to that involute gear. In this manner, a motor driving one of the window shades may be used to drive one or more additional roller shades.
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[0139] Because the mounting bracket 1000 is operable any of a range of gear angles, such as from 0 to 180, the mounting bracket 1000 is suitable for use with adjacent windows at any of a corresponding range of angles. Therefore, the need for providing specific gear arrangements designed only for a specific gear angle is eliminated.
INDUSTRIAL APPLICABILITY
[0140] To solve the aforementioned problems, the present embodiments provide an involute gear system and bracket system which permit adjacent motorized roller shades to be driven by a single motor regardless of the angle between the adjacent roller shades.
ALTERNATE EMBODIMENTS
[0141] Alternate embodiments may be devised without departing from the spirit or the scope of the embodiments.