Device for compensating for tolerances
11168722 · 2021-11-09
Assignee
Inventors
Cpc classification
F16B5/0233
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16B5/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16B41/002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16B5/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The invention relates to a spring element for a device for compensating for tolerances between a first and a second component, characterized by at least one spring arm which has two opposite end regions along its longitudinal direction, wherein at least one of the end regions has a greater distance from a longitudinal central axis of the spring element than an intermediate section of the spring arm between the end regions, and wherein at least one of the end regions forms a corner which protrudes radially outwards.
Claims
1. A device for compensating for tolerances between a first and second component, the device comprising: a base element; a compensating element in which a passage is formed for a connecting means, the compensating element engaging with the base element by means of a threading; and a spring element arranged in the passage of the compensating element; wherein the spring element comprises at least one spring arm which, as seen in its longitudinal direction, has two opposite end regions, wherein at least one of the two opposite end regions has a greater distance from a longitudinal central axis of the spring element than an intermediate section of the spring arm situated between the two opposite end regions, and wherein at least one of the two opposite end regions forms a corner which protrudes radially outwards to an extent that the corner pushes into the compensating element when the spring element is situated in the passage of the compensating element to non-rotatably mount the spring element in the passage of the compensating element.
2. The device according to claim 1, wherein each spring arm has a longitudinal extension, wherein the longitudinal extension of a spring arm and the longitudinal central axis are approximately in alignment.
3. The device according to claim 1, wherein each spring arm as seen in the longitudinal direction has two opposite end regions, wherein at least one end region has a greater distance from the longitudinal central axis than an intermediate section of a spring arm situated between the end regions.
4. The device according to claim 1, wherein a plurality of spring arms is arranged around the longitudinal central axis of the spring element, and the plurality of spring arms are connected to each other by means of a connecting ring.
5. The device according to claim 4, wherein the connecting ring as seen in the axial direction is formed between unconnected end regions of the spring arms.
6. The device according to claim 4, wherein each spring arm has an unconnected end region and an opposite, connected end region, wherein connected end regions are connected by the connecting ring.
7. The device according to claim 1, wherein at least three spring arms are arranged around the longitudinal central axis of the spring element, and the at least three spring arms are connected to each other by means of a connecting ring.
8. The device according to claim 7, wherein the connecting ring as seen in the axial direction is formed between unconnected end regions of the spring arms.
9. The device according to claim 7, wherein each spring arm has an unconnected end region and an opposite, connected end region, wherein connected end regions are connected by the connecting ring.
10. The device according to claim 1, wherein both the first end regions and the opposite end regions, respectively, are each connected by a connecting ring.
11. The device according to claim 1, wherein the connecting ring has a slot, the slot being aligned at least approximately parallel to the longitudinal central axis of the spring element.
12. The device according to claim 11, wherein the slot is bounded by two adjacent spring arms.
13. The device according to claim 11, wherein at least one end region of a spring arm facing the slot has a corner which protrudes radially outwards.
14. The device according to claim 1, wherein the spring element is made of a metal.
15. The device according to claim 14, wherein the spring element is made of a spring steel.
16. The device according to claim 1, wherein the connecting ring extends in a plane which is aligned at least approximately perpendicular to the longitudinal central axis.
Description
(1) The invention will be described in the following, purely by way of example, using possible embodiments with reference to the accompanying drawings, wherein:
(2)
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(10) In some embodiments, provided for is a device for compensating for tolerances between a first and second component, having a base element 34, having a compensating element 28 in which a passage 26 is formed for a connecting means, which engages with the base element 34 by means of a threading, and having a spring element 10 arranged in the passage 26 of the compensating element 28, wherein the spring element 10 comprises at least one spring arm 12 which, as seen in its longitudinal direction, has two opposite end regions 14, wherein at least one of the end regions 14 has a greater distance from a longitudinal central axis A of the spring element 10 than an intermediate section 16 of the spring arm 12 situated between the end regions 14, and wherein at least one of the end regions 14 forms a corner 24 which protrudes radially outwards.
(11)
(12) Each spring arm 12 has, as seen in the longitudinal direction, two opposite end regions 14 between which an intermediate section 16 of the spring arm 12 is found. The two end regions 14 of the spring arm 16 in this case are radially further removed from the longitudinal central axis A than the intermediate sections 16. In other words, the end regions 14 are pushed radially outwards along the axial direction, while the intermediate sections 16 curve radially inward in the direction of the longitudinal central axis A.
(13) The spring arms 12 are connected to each other by a connecting ring 18 which is interrupted by a slot 20. The slot 20 is aligned at least approximately parallel to the longitudinal central axis A and is bounded by two adjacent spring arms 12. Moreover, the connecting ring 18 comprises connecting sections 22 which are each situated between two adjacent spring arms 12. In the embodiment shown in
(14) The end regions 14 of the spring arms 12 which bound the slot 20 and face the slot 20 each have a corner 24 on the side facing the slot 20, which protrudes radially outward. The function thereof will be explained in more detail in the context of
(15) As can be seen from
(16)
(17)
(18) The function of the corners which protrude radially outwards 24 and are formed on the spring arms 12 bounding the slot 20 will be described in the following with reference to
(19) The spring element 10 is, when in a pre-assembly state—that is to say, when the spring element 10 has not yet been arranged in the passage 26 of a compensating element 28—oversized compared to the passage 26 of the compensating element 28. If the spring element 10 is inserted into the passage 26, the connecting rings 18 are compressed while opposing a spring force of the connecting rings 18, wherein the spring arms 12 which bound the slot 20 are moved towards each other. An appendage or projection 31 constructed in the passage 26 of the compensating element 28 precludes the spring element 10 from being pushed through the passage 26 and out of the compensating element 28.
(20) When the spring element 10 is seated in the passage 26, the spring force of the connecting rings 18 causes the corners which protrude radially outwards 24 to be pressed into the compensating element 28. This effect is additionally reinforced when a connecting means 30 (
(21) Moreover, the corners 24 of the spring arms 12 pressed into the compensating element 28 prevent the spring element 10 from slipping out of the compensating element 28 in the axial direction when the connecting means 30 is pulled out. The spring element 10 lingers in the compensating element 28 to a certain extent. As a result, there is no need for an additional axial fixation of the spring element 10 in the passage 26 of the compensating element 28 against the joining direction of the connecting means 30.
(22) When the connecting means 30 is inserted into the spring element 10 arranged in the passage 26, it is advantageous that the end regions 14 of the spring arms 12 are at a greater distance from the longitudinal central axis A of the spring element 10 than the intermediate sections 16 between the end regions 14. As a result, the connecting means 30 is guided through the intermediate sections 16 of the spring arms 12 during the insertion into the spring element 10, and the plurality of spring arms 12 causes the connecting means 30 to be centered in the passage 26 of the compensating element 28 such that, ideally, the longitudinal central axis A, a longitudinal central axis B of the compensating element 28, and a longitudinal central axis C of the connecting means 30 coincide. This prevents the spring element 10 from wedging in the passage 26 of the compensating element 28 and being damaged during the insertion of the connecting means 30.
(23) Moreover, the force to be applied during the insertion of the connecting means 30 into the spring element 10 arranged in the passage 26 diminishes progressively as the penetration depth progresses, as will now be explained with reference to
(24) The spring elements 10 described above are punched bent parts, which are preferably made of spring steel. It is advantageous in this case, as can be seen from
(25) Finally, it should be noted that although the spring elements 10 shown in the embodiments each have five spring arms 12, the number of spring arms 12 can also differ from five, such that a spring element 10 can have more or less than five—but preferably at least three—spring arms 12. Moreover, the distances between the spring arms 12 as seen in the circumferential direction need not be equidistant. Rather, the spring arms 12 can also have different distances from each other.
LIST OF REFERENCE NUMBERS
(26) 10 spring element
(27) 12 spring arm
(28) 14 end region
(29) 16 intermediate section
(30) 18 connecting ring
(31) 20 slot
(32) 22 connecting section
(33) 24 corner
(34) 26 passage
(35) 28 compensating element
(36) 30 connecting means
(37) 31 projection
(38) 32 shaft
(39) α angle
(40) ß internal angle
(41) A longitudinal central axis
(42) B longitudinal central axis
(43) C longitudinal central axis