Guide block for sunroof of an automobile
09821643 · 2017-11-21
Assignee
Inventors
Cpc classification
B60J7/024
PERFORMING OPERATIONS; TRANSPORTING
B60J7/02
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60J7/04
PERFORMING OPERATIONS; TRANSPORTING
B60J7/043
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A guide block for a sunroof of an automobile including a front channel extending upwards and connecting to a lower channel at a first angle with respect to the lower channel forming a first path, and a rear channel extending upwards and connecting to an upper channel at a second angle with respect to an upper channel forming a second path, where the first path intersects the second path at a cross-over region.
Claims
1. A guide block for a sunroof of an automobile, comprising: a front channel in a surface of the guide block that extends upwards and connects to a lower channel at a first angle with respect to the lower channel, the front channel and lower channel forming a first path; and a rear channel in the surface of the guide block that extends upwards and connects to an upper channel at a second angle with respect to the upper channel, the rear channel and the upper channel forming a second path, wherein the first path and the second path intersect at a cross-over region.
2. The guide block according to claim 1, further comprising a check block slidably connected to the first path, the check block holding a front pin.
3. The guide block according to claim 2, wherein the front pin located in the first path passes across the rear channel at the cross-over region when moving from the front channel towards the rear channel along the first path.
4. The guide block according to claim 3, wherein the front pin crosses the rear channel after a rear pin located in the second path travels upwards along the rear channel into the upper channel, wherein the front pin and the rear pin are moving simultaneously.
5. The guide block according to claim 1, wherein the first angle of the front channel is greater than the second angle of the rear channel making the rear channel steeper than the front channel with respect to a horizontal direction of the guide block.
6. The guide block according to claim 5, wherein the front channel has a variable width that increases from the lower channel to a base edge of the front channel.
7. The guide block according to claim 6, wherein the base edge includes a notch to orient and guide an element in the front channel in an upward direction.
8. The guide block according to claim 1, wherein the rear channel is substantially straight, has an uniform width, and is longer in length than the front channel.
9. The guide block according to claim 1, wherein the lower channel and the upper channel are substantially parallel and extend a horizontal direction of the guide block.
10. The guide block according to claim 9, wherein the lower channel is longer in length than the upper channel and located below the upper channel in a vertical direction of the guide block.
11. The sliding apparatus according to claim 1, further comprising a mid-channel located between the rear channel and the front channel.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The accompanying drawings, which are incorporated in and constitute a part of the specification, illustrate one or more embodiments and, together with the description, explain these embodiments. The accompanying drawings have not necessarily been drawn to scale. Any values dimensions illustrated in the accompanying graphs and figures are for illustration purposes only and may or may not represent actual or preferred values or dimensions. Where applicable, some or all features may not be illustrated to assist in the description of underlying features. In the drawings:
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DETAILED DESCRIPTION
(11) The description set forth below in connection with the appended drawings is intended as a description of various embodiments of the disclosed subject matter and is not necessarily intended to represent the only embodiment(s).
(12) It is to be understood that terms such as “left,” “right,” “front,” “rear,” “side,” “height,” “length,” “width,” “upper,” “lower,” “inner,” “outer,” and the like that may be used herein merely describe points of reference and do not necessarily limit embodiments of the present disclosure to any particular orientation or configuration. Furthermore, terms such as “first,” “second,” “third,” etc., merely identify one of a number of portions, components, steps, operations, functions, and/or points of reference as disclosed herein, and likewise do not necessarily limit embodiments of the present disclosure to any particular configuration or orientation.
(13) Furthermore, the terms “approximately,” “proximate,” “minor,” and similar terms generally refer to ranges that include the identified value within a margin of 20%, 10% or preferably 5% in certain embodiments, and any values therebetween.
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(15) Typically, the guide block 100 is installed on a rail 20 of the sliding mechanism. The conventional guide blocks of the sliding mechanism leaves a gap between the first panel A and the second panel B when sliding. The guide block 100 of the present disclosure allows the first panel A, particularly the side garnish A.sub.side, to remain flushed with the second panel B, thus eliminating the gap.
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(18) The front channel 101 extends upward to connect to the lower channel 102 at a first angle θ.sub.1 with respect to a lower channel forming a first path X1. The rear channel 105 extends upwards to connect to the lower channel 102 at a second angle θ.sub.2 with respect to the upper channel 106 forming a second path X2. The first angle θ.sub.1 of the front channel 101 is greater than the second angle θ.sub.2 of the rear channel 105 making the rear channel 105 steeper than the front channel 101. Furthermore, the lower channel 102 and the upper channel 106 extend backwards in a horizontal direction and are substantially parallel to each other.
(19) The mid-channel 103 can be formed between the front channel 101 and the rear channel 105. The mid-channel 103 can have an inverted-T shape. The mid-channel 103 can be formed for manufacturing attaching means such as a clip (not shown) that allows the guide block 100 to connect to the rail 20. For example, during an injection molding of the guide block 100, the mid-channel 103 can be formed using dies for making the clip. The mid-channel 103 can also facilitate addition of attaching means that can be arranged parallel to the clip located behind the front channel 101.
(20) Furthermore, the guide block 100 can be connected to a check block 300 and a guide pin 400. The check block 300 can be slidably connected to the front channel 101 and the guide pin 400 can be slidably connected to the rear channel 105. The check block 300 can travel along the path X1 and the guide pin 400 can travel along the path X2.
(21) The guide block 100 has a unitary construction. The guide block 100 can be made of different materials including metallic and non-metallic materials such as steel, cast iron, aluminum, or plastic. The channels 101, 102, 103, 105, and 106 can be formed using standard machining and manufacturing processes such as milling, shaping, cutting, forming, molding, etc.
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(23) The rear channel 105 is substantially straight, has uniform width and a length, which is greater than a length of the front channel 101. Referring to
(24) The rear channel 105 intersects the lower channel 102 at a cross-over region CX1. The cross-over region CX1 is a point of intersection of the first path X1 and the second path X2. At the cross-over region CX1 a front pin 350 (shown in
(25) The lower channel 102 and the upper channel 106 extend in the horizontal direction towards the left. The lower channel 102 is longer than the upper channel 106 and located below the upper channel 106. The lower channel 102 has a length L.sub.LC and a width W.sub.LC. The lower channel 102 is located at a height H.sub.LC from the base of the guide block 100. The distance between the lower channel 102 and the upper channel 106 is D.sub.C.
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(27) Furthermore, the check block 300 includes a sliding portion 321, illustrated in
(28) According to one embodiment, the length a length L.sub.SP of the sliding portion should be greater than the width of the mid-channel 103 of the guide block 100 to prevent the check block 300 from sliding down in the mid-channel 103 of the guide block 100.
(29) The check block 300 also includes a plurality of bumps 303a, 303b, and 303c. The bumps 303a-303c provide a spacing between the front pin holder 301 and the shoe 200 (not illustrated) that can be connected to the front pin holder 301. Also, each of the bumps 303a-303c make a point contact with the shoe 200, thus reducing friction and facilitating smooth sliding motion of the check block 300.
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(31) Referring back to
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(33) The movement of the pins 350 and 360 is further transmitted to the sliding panel A via additional mechanical elements connected between the pins 350 and 360 and the sliding panel A.
(34) While certain embodiments have been described, these embodiments have been presented by way of example only, and are not intended to limit the scope of the present disclosures. Indeed, the novel methods, apparatuses and systems described herein can be embodied in a variety of other forms; furthermore, various omissions, substitutions and changes in the form of the methods, apparatuses and systems described herein can be made without departing from the spirit of the present disclosures. The accompanying claims and their equivalents are intended to cover such forms or modifications as would fall within the scope and spirit of the present disclosures.