Vibration-damped hand-held power tool
11518017 · 2022-12-06
Assignee
Inventors
Cpc classification
International classification
B25F5/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
An electric hand-held power tool (100), in particular a hammer drill or chipping hammer, having a percussion mechanism assembly (10), which vibrates along a vibration axis (A), and a handle assembly (20), which is vibrationally decoupled via an anti-vibration unit (30), wherein the anti-vibration unit (30) has a coil spring (35), oriented along the vibration axis (A), having a plurality of turns, wherein the coil spring (35) is in the form of a cylindrically progressive compression spring (36) having two stiffness regions (S1, S2) with different levels of stiffness.
Claims
1. An electric hand-held power tool comprising: a percussion mechanism assembly vibrating along a vibration axis; and a handle assembly vibrationally decoupled from the percussion mechanism assembly via an anti-vibration unit, wherein the anti-vibration unit has a coil spring oriented along the vibration axis, the coil spring having a plurality of turns, the coil spring being in the form of a cylindrically progressive compression spring having two sides, one connected to the percussion mechanism assembly and the other to the handle assembly, the cylindrically progressive compression spring having a first stiffness region and a second stiffness region with different levels of stiffness; wherein the cylindrically progressive compression spring is configured in a progressive manner on both sides, and has a third stiffness region, the cylindrically progressive compression spring having a constant outer diameter and being made of a constant diameter wire and having a variable pitch so that on an unloaded state, when no load is being applied to the cylindrically progressive compression spring, a first pitch in the first and third stiffness regions is different than a second pitch in the second stiffness region, the cylindrically compressive spring being preloaded and compressed in an installed and non-actuated state to have a nominal installed and non-actuated length smaller than a nominal unloaded length.
2. The hand-held power tool as recited in claim 1 wherein the cylindrically progressive compression spring is configured in a progressive manner on one side, wherein the second stiffness region with a higher stiffness sequentially follows the first stiffness region with a lower stiffness.
3. The hand-held power tool as recited in claim 1 wherein the second stiffness region with a higher stiffness sequentially follows the first stiffness region with a lower stiffness and wherein the third stiffness region has a same stiffness as the first stiffness region.
4. The hand-held power tool as recited in claim 3 wherein the first and third stiffness regions exhibit a same length along the vibration axis.
5. The hand-held power tool as recited in claim 3 wherein, with the cylindrically progressive compression spring unloaded, the first and third stiffness regions are shorter along the vibration axis than a length of the second stiffness region.
6. The hand-held power tool as recited in claim 1 wherein the second stiffness region lies, along the vibration axis, between the first and third stiffness regions, the first and third stiffness regions having lower stiffnesses than the second stiffness region.
7. The hand-held power tool as recited in claim 6 wherein the first and third stiffness regions exhibit a same length along the vibration axis.
8. The hand-held power tool as recited in claim 6 wherein, with the cylindrically progressive compression spring unloaded, the first and third stiffness regions are shorter along the vibration axis than a length of the second stiffness region.
9. The hand-held power tool as recited in claim 1 wherein, with the cylindrically progressive compression spring unloaded, the first and third stiffness regions have a lower stiffness than the second stiffness region and are shorter along the vibration axis than a length of the second stiffness region.
10. A hammer drill comprising the hand-held power tool as recited in claim 1.
11. The hammer drill as recited in claim 10 further comprising a housing, the handle assembly being a rear handle and further comprising a front handle connected to the housing.
12. The hammer drill as recited in claim 11 wherein the percussion mechanism assembly is connected via an articulated arm to the housing.
13. A chipping hammer comprising the hand-held power tool as recited in claim 1.
14. The hand-held power tool as recited in claim 1 further comprising a housing, the percussion mechanism assembly being connected via an articulated arm to the housing.
15. The hand-held power tool as recited in claim 14 wherein the articulated arm and the cylindrically progressive compression spring connect to a same side of the housing.
16. The hand-held power tool as recited in claim 14 further comprising a housing and a rear bump stop and front bump stop connected to the housing limiting movement of the percussion mechanism assembly.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Identical components and components of identical type are designated by identical reference signs in the figures, in which:
(2)
(3)
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(8)
DETAILED DESCRIPTION
(9) A preferred exemplary embodiment of an electric hand-held power tool 100 is shown in
(10) The electric hand-held power tool 100 also has a handle assembly 20, which is vibrationally decoupled via an anti-vibration unit 30. The anti-vibration unit 30 for its part has a coil spring 35, oriented along the vibration axis A, having a plurality of turns.
(11) As can be gathered from
(12) The housing 90 can for its part be handled via a rear handle 25 and a front handle 55.
(13) In the region of the anti-vibration unit 30, the percussion mechanism assembly 10 is connected to the housing unit 90 via an articulated arm 37 such that the percussion mechanism assembly 10 can move along the vibration axis A.
(14) With respect to its movement along the vibration axis A, the movement of the percussion mechanism assembly 10 is limited by a front bump stop 71 and a rear bump stop 73.
(15) According to the invention, the coil spring 35 is in the form of a cylindrically progressive compression spring 36 having two stiffness regions S1, S2 with different levels of stiffness.
(16) In the exemplary embodiment in
(17) In
(18) In the unloaded state, shown in
(19) A cylindrically progressive compression spring 36 that is configured in a progressive manner on both sides is illustrated in
(20) In the case of the compression spring 36 in
(21) The third stiffness region S3 has the same stiffness as the first stiffness region S1, and so both the first stiffness region S1 and the second stiffness region S3 each have a lower stiffness than the middle, second stiffness region S2.
(22) It is likewise readily apparent from
(23) The stiffness regions S1, S3 with the respectively lower stiffness exhibit the same length LS1, LS3 along the vibration axis A. This has the advantage that the risk of kinking of the cylindrical compression spring 36 configured in a progressive manner on both sides is reduced.
(24) In the exemplary embodiment in
(25) With reference to
(26)
(27)
(28) In the case of the structurally preferred compression spring 36, a wire diameter d of 2.8 mm and a mean turn diameter of the compression spring 36 Dm of about 18.2 mm should be noted. The number of spring turns n is calculated to be about 9.9 turns. The total number of turns nt is calculated to be about 13.1 turns.
(29)
(30)
LIST OF REFERENCE SIGNS
(31) 10 Percussion mechanism assembly with motor and transmission 20 Handle assembly 25 Rear handle 30 Anti-vibration unit 35 Coil spring 36 Compression spring 37 Articulated arm 55 Front handle 60 Sliding guide 71 Front bump stop 73 Rear bump stop 90 Housing unit 100 Hand-held power tool A Vibration axis L0 Nominal length of the compression spring in an unloaded state L1 Nominal length of the unloaded in an installed and non-actuated state L2 Nominal length of the unloaded compression spring in an installed and actuated state LS1 Length of the first stiffness region LS2 Length of the second stiffness region LS3 Length of the third stiffness region S1 First stiffness region S2 Second stiffness region S3 Third stiffness region