Snap-Lock Engagement Pulley
A pulley having an axis of rotation includes a flexible projection portion configured for rotatable snap-lock engagement with an object having an aperture.
1 . A pulley having an axis of rotation for rotatable engagement with an object that includes an aperture having a diameter, the pulley comprising a flexible projection portion arranged surrounding the axis of rotation and configured for snap-lock engagement with the object;
wherein the flexible projection portion is arranged as a bearing surface to thereby facilitate the rotatable engagement with the object.
2 . (canceled)
3 . The pulley of claim 1 , further comprising a first side face orthogonal to the axis of rotation, a second side face parallel to the first side face, an annular portion arranged between the first face and the second face, wherein the flexible projection portion includes multiple flexible projections arranged on the first side face on a pitch diameter concentric with the axis of rotation.
4 . The pulley of claim 3 , further comprising engagement portions arranged on the flexible projections substantially orthogonal to the axis of rotation, the engagement portions having an outer diameter that is greater than the pitch diameter and arranged to spring back for snap-lock engagement when pushed through the aperture, wherein the diameter of the aperture is smaller than the outer diameter of the engagement portions.
5 . The pulley of claim 4 , wherein the engagement portions further comprise lead-in chamfers for reducing a force required to push the engagement portions through the aperture.
6 . The pulley of claim 1 , further comprising a groove on a perimeter of the annular portion for receiving a drive element.
7 . The pulley of claim 1 , wherein the pulley is a unitary structure formed from plastic.
8 . A pulley having an axis of rotation for rotatable engagement with an object that includes an aperture having a diameter, the pulley comprising:
a first side face orthogonal to the axis of rotation;
a second side face parallel to the first side face;
an annular portion having a perimeter arranged between the first side face and the second side face;
a groove arranged on the perimeter of the annular portion for receiving a drive element;
flexible projections arranged on the first side face on a pitch diameter concentric with the axis of rotation; and
engagement portions arranged on the flexible projections orthogonal to the axis of rotation, the engagement portions having an outer diameter that is greater than the pitch diameter and arranged to spring back for snap-lock engagement when pushed through the aperture, wherein the diameter of the aperture is smaller than the outer diameter of the engagement portions;
wherein the pulley is rotatably engaged with the aperture when the engagement portions are pushed through the aperture, and the flexible projections are arranged as a bearing surface to thereby facilitate the rotatable engagement with the object.
9 . (canceled)
10 . The pulley of claim 8 , wherein the engagement portions further comprise lead-in chamfers for reducing a force required to push the engagement portions through the aperture.
11 . The pulley of claim 8 , wherein the pulley is a unitary structure formed from plastic.
12 . A method of assembling a pulley having an axis of rotation with an object that includes an aperture, the method comprising:
aligning flexible projections arranged on the pulley with the aperture, wherein the flexible projections are arranged on a pitch diameter concentric with the axis of rotation and configured with engagement portions having an outer diameter that is greater than the pitch diameter, and wherein the aperture has a diameter that is smaller than the outer diameter of the engagement portions;
pushing the engagement portions into the aperture; and
sensing snap-lock engagement of the flexible projections with the object.
13 . The method of claim 12 , wherein said sensing snap-lock engagement comprises recognizing a load increase representing engagement of the engagement portions with the object followed by recognizing a load drop representing snap-back engagement of the flexible projections.
14 . The method of claim 12 , wherein said sensing further comprises recognizing a load increase representing a hard stop, wherein the load increase representing a hard stop is more abrupt and greater than the load increase representing engagement of the engagement portions with the object, and wherein pushing is performed until a hard stop is sensed.
15 . The method of claim 12 , wherein said aligning, said pushing and said sensing are performed automatically by an assembly apparatus.
16 . The method of claim 12 , wherein said aligning, said pushing and said sensing are performed manually by an operator.