Handheld work apparatus
10941786 ยท 2021-03-09
Assignee
Inventors
- Gerd Densborn (Waiblingen, DE)
- Harald Schliemann (Waiblingen, DE)
- Ralf Cornelsen (Aspach, DE)
- Wolfgang Weissert (Winnenden, DE)
Cpc classification
F04D29/263
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B25F5/00
PERFORMING OPERATIONS; TRANSPORTING
F04D17/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D25/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E01H1/0827
FIXED CONSTRUCTIONS
E01H1/0809
FIXED CONSTRUCTIONS
F01P5/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B63/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B08B5/02
PERFORMING OPERATIONS; TRANSPORTING
F16B39/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/023
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04D29/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
E01H1/08
FIXED CONSTRUCTIONS
F04D29/62
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D25/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D17/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16B39/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B25F5/00
PERFORMING OPERATIONS; TRANSPORTING
F01P5/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D25/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A handheld work apparatus has a blower wheel. The blower wheel is held via a nut on the shaft in a manner locked against rotation by frictional force. A thread moment of friction is transmittable between the nut and the shaft via a thread section. A first moment of friction is transmittable between the nut and the blower wheel via a first friction contact surface. The first friction contact surface is configured such that, at a minimum tightening torque of the nut, the first moment of friction is greater than the thread moment of friction. As a result, during the operation of the work apparatus when there is a relative movement between the blower wheel and the shaft, the blower wheel moves the nut along therewith. The nut retensions the blower wheel against the shaft. The second friction contact surface runs conically with respect to the rotational axis.
Claims
1. A handheld work apparatus comprising: a shaft; a drive motor configured to drive said shaft in a rotating manner about a rotational axis during operation of said handheld work apparatus; a nut having an end face; a blower wheel held on said shaft via said nut in a manner locked against rotation by frictional force; said nut being configured separate from said blower wheel; said nut and said shaft being in contact via a thread section wherein an acting thread moment of friction (M.sub.A) acting about said rotational axis is transmittable between said nut and said shaft via said thread section; said nut and said blower wheel being in contact via a first friction contact surface wherein a first moment of friction (M.sub.1) acting about said rotational axis is transmittable between said nut and said blower wheel via said first friction contact surface; said blower wheel and said shaft being in contact via a second friction contact surface; said nut having a minimum tightening moment between 10% and 100% of an operating torque; said first friction contact surface being configured such that, at said minimum tightening moment of said nut, said first moment of friction (M.sub.1) transmittable between said nut and said blower wheel via said first friction contact surface is greater than said acting thread moment of friction (M.sub.A), and therefore, during the operation of the work apparatus when there is a relative movement between said blower wheel and said shaft, said blower wheel moves said nut along therewith via said first moment of friction (M.sub.1) acting at said first friction contact surface so that said nut retensions said blower wheel against said shaft via said second friction contact surface; said nut lying only with said end face thereof against said blower wheel so as to permit relative rotation between said nut and said blower wheel; and, said second friction contact surface running conically with respect to the rotational axis.
2. A handheld work apparatus comprising: a shaft; a drive motor configured to drive said shaft in a rotating manner about a rotational axis during operation of said handheld work apparatus; a nut having an end face; a blower wheel held on said shaft via said nut in a manner locked against rotation by frictional force; said nut being configured separate from said blower wheel; said nut and said shaft being in contact via a thread section wherein an acting thread moment of friction (M.sub.A) acting about said rotational axis is transmittable between said nut and said shaft via said thread section; said nut and said blower wheel being in contact via a first friction contact surface wherein a first moment of friction (M.sub.1) acting about said rotational axis is transmittable between said nut and said blower wheel via said first friction contact surface; said blower wheel and said shaft being in contact via a second friction contact surface; said nut having a minimum tightening moment between 10% and 100% of an operating torque; said first friction contact surface being configured such that, at said minimum tightening moment of said nut, said first moment of friction (M.sub.1) transmittable between said nut and said blower wheel via said first friction contact surface is greater than said acting thread moment of friction (M.sub.A), and therefore, during the operation of the work apparatus when there is a relative movement between said blower wheel and said shaft, said blower wheel moves said nut along therewith via said first moment of friction (M.sub.1) acting at said first friction contact surface so that said nut retensions said blower wheel against said shaft via said second friction contact surface; said nut lying only with said end face thereof against said blower wheel so as to permit relative rotation between said nut and said blower wheel; and, said second friction contact surface running conically with respect to the rotational axis; wherein said nut defines an inner radius (d); a tangential force (F.sub.T), which forms said first moment of friction (M.sub.1), at said first friction contact surface acts at a distance (s) from said rotational axis in a peripheral direction of the rotational axis; and, said distance (s) corresponds at least to 1.5 times said inner radius (d) of said nut at said thread section.
3. A handheld work apparatus comprising: a shaft; a drive motor configured to drive said shaft in a rotating manner about a rotational axis during operation of said handheld work apparatus; a nut having an end face; a blower wheel held on said shaft via said nut in a manner locked against rotation by frictional force; said nut being configured separate from said blower wheel; said nut and said shaft being in contact via a thread section wherein an acting thread moment of friction (M.sub.A) acting about said rotational axis is transmittable between said nut and said shaft via said thread section; said nut and said blower wheel being in contact via a first friction contact surface wherein a first moment of friction (M.sub.1) acting about said rotational axis is transmittable between said nut and said blower wheel via said first friction contact surface; said blower wheel and said shaft being in contact via a second friction contact surface; said nut having a minimum tightening moment between 10% and 100% of an operating torque; said first friction contact surface being configured such that, at said minimum tightening moment of said nut, said first moment of friction (M.sub.1) transmittable between said nut and said blower wheel via said first friction contact surface is greater than said acting thread moment of friction (M.sub.A), and therefore, during the operation of the work apparatus when there is a relative movement between said blower wheel and said shaft, said blower wheel moves said nut along therewith via said first moment of friction (M.sub.1) acting at said first friction contact surface so that said nut retensions said blower wheel against said shaft via said second friction contact surface; said nut lying only with said end face thereof against said blower wheel so as to permit relative rotation between said nut and said blower wheel; and, said second friction contact surface running conically with respect to the rotational axis; wherein said second friction contact surface and the rotational axis enclose an angle (a) of at least 15.
4. The work apparatus of claim 1, wherein said second friction contact surface and the rotational axis enclose an angle () of at most 75.
5. The work apparatus of claim 1, wherein said second friction contact surface is configured and arranged such that there is no self-locking between said blower wheel and said nut in said second friction contact surface.
6. The work apparatus of claim 1, wherein said shaft has a shaft contact surface; said blower wheel has a second blower wheel contact surface; and, said second friction contact surface includes two surfaces which are in contact, wherein said two surfaces are said shaft contact surface and said second blower wheel contact surface.
7. The work apparatus of claim 6, wherein, in a top view of a longitudinal plane containing the rotational axis, an angle () between said second blower wheel contact surface and the rotational axis is smaller than an angle () between said shaft contact surface and the rotational axis.
8. The work apparatus of claim 1, wherein said nut has a nut contact surface; said blower wheel has a first blower wheel contact surface; and, said first friction contact surface includes two surfaces which are in contact, wherein said two surfaces are said nut contact surface and said first blower wheel contact surface.
9. The work apparatus of claim 1, wherein said thread section includes a thread in the form of a fine pitch thread.
10. The work apparatus of claim 1, wherein said shaft has a cylindrical section formed thereon; and, said blower wheel is supported against inclination with respect to said shaft on said cylindrical section.
11. The work apparatus of claim 1, wherein said blower wheel has a hub and a wheel fastened on said hub; and, said nut lies with said end face thereof against said hub.
12. The work apparatus of claim 11, wherein said hub is made of a metal.
13. The work apparatus of claim 11, wherein said hub is made of a sintered metal.
14. The work apparatus of claim 1, wherein said blower wheel and said shaft are mutually connected in a friction force-fitting manner.
15. The work apparatus of claim 1, wherein said first friction contact surface is disposed between said nut and said blower wheel in a plane lying perpendicular to said rotational axis of said shaft.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The invention will now be described with reference to the drawings wherein:
(2)
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(4)
(5)
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DESCRIPTION OF THE PREFERRED EMBODIMENTS OF THE INVENTION
(14)
(15)
(16) In the embodiment, the blower wheel 7 is in the form of a radial blower and has vanes 16 for conveying the air. The blower wheel 7 has a single-part basic body which is constructed from two disks 14 and 15, between which the vanes 16 extend. The vanes 16 of the blower wheel 7 run spirally toward the rotational axis 4. The disk 14 has an opening 17. During the operation of the handheld work apparatus 1, the blower wheel 7 rotates about the rotational axis 4 in the rotational direction 5, and the working air is taken in via the opening 17, is conveyed outward by the vanes 16 of the blower wheel 7 and conducted into the blower helix 33 (not illustrated in
(17)
(18) As shown in
(19) The hub 23 is subject to different loads than the wheel 24 and, in the embodiment, is produced from a different material. As a result of the production of the blower wheel 7 from at least two different materials, the mass of the blower wheel 7 can be reduced. In an embodiment, the blower wheel 7 can also be produced from one material and/or as a single part. The hub 23 has two outer front ends 43, 44 which are approximately perpendicular to the rotational axis 4, wherein the first front end 43 of the hub 23 faces the nut 6 and the second front end 44 of the hub 23 faces away from the nut. The teeth 35 have a distance g, as measured in the direction of the rotational axis 4, from the first front end 43 of the hub 23 and a distance h, as measured in the direction of the rotational axis 4, from the second front end 44 of the hub 23. The teeth 35 are formed on the hub 23 in such a manner that the distance g is greater than the distance h. Accordingly, the teeth 35 lie closer to the second front end 44 than to the first front end 43.
(20)
(21) As shown in
(22) As
(23) As
(24) As
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(27) In the embodiment, the first friction contact surface 12 between the nut 6 and the hub 23 is configured in such a manner that the first moment of friction M.sub.1 is greater than the thread moment of friction M.sub.A acting in the thread section 11 between nut 6 and shaft 3. If nut 6 and hub 23 are in contact, and the hub 23 is rotated relative to the shaft 3, the nut 6 is carried along by the hub 23.
(28) The rotation of the hub 23 relative to the shaft 3 results from the fact that the hub 23 and the shaft 3 are merely connected in a manner locked by frictional force, and the initially applied tightening moment does not or does not completely compensate for the moment of inertia of the blower wheel 7. As long as the hub 23 spins on the shaft 3, the hub 23 executes a relative movement counter to the rotational direction of the shaft 3.
(29)
(30) The blower wheel 7 is fastened on the shaft 3 in accordance with the method described below:
(31) The blower wheel 7 is pushed onto the shaft 3 and centered via the cone 37 of the shaft 3. The nut 6 is subsequently screwed onto the thread section 11 of the shaft 3 such that the nut 6 and the blower wheel 7 make contact in the first friction contact surface 12. The nut 6 can be tightened here against the blower wheel 7 by the operator with a minimum tightening moment which is between 10% and 100% of the operating torque. If the nut 6 is tightened with a tightening moment which is less than the minimum tightening moment, the first moment of friction M.sub.1 which is transmittable between the nut 6 and the blower wheel 7 via the first friction contact surface 12 is not necessarily greater than the acting thread moment of friction M.sub.A. In order to ensure retightening of the connection during operation, the operator has to tighten the nut 6 at least with the structurally defined minimum tightening moment. The minimum tightening moment here is configured in such a manner that it is between 10% and 100% of the operating torque. In the embodiment, the operating torque is approximately 100 Nm. In an embodiment, the minimum tightening moment is at least 30% of the operating torque. In an embodiment, the minimum tightening moment is at most 90%, in particular at most 80% of the operating torque. It is accordingly sufficient if the operator tensions the nut 6 against the blower wheel 7 only with a small tightening moment.
(32) During the operation of the handheld work apparatus 1, the nut 6 is retensioned without intervention of the operator until the sum of the acting thread moment of friction M.sub.A and the second moment of friction M.sub.2 corresponds to the operating torque acting on the blower wheel 7 and the hub 23 of the blower wheel 7 therefore no longer slips through on the shaft 3. If the blower wheel 7 slips through on the shaft 3, a relative movement between the blower wheel 7 and the shaft 3 arises. Since the nut 6 and the hub 23 are already in friction contact with each other, and the first friction pairing is coordinated in such a manner that the first moment of friction M.sub.1 between the nut 6 and the hub 23 is always greater than the thread moment of friction M.sub.A, acting in the thread section 11, between the shaft 3 and the nut 6, no relative movement takes place between the hub 23 and the nut 6 and instead the nut 6 is rotated relative to the shaft 3 by the blower wheel 7. The nut 6 is rotated further here on the thread section 11 and is tensioned axially against the cone 37 of the shaft 3 via the blower wheel 7 in the direction of the rotational axis 4. The blower wheel 7 is pressed here against the cone 37 of the shaft 3 and retensioned, as a result of which the normal force acting on the second friction contact surface 13 is increased. If the second moment of friction M.sub.2 is of a size sufficient for no relative movement to take place any longer between blower wheel 7 and the shaft 3, the nut 6 is tightened with the final acting thread moment of friction M.sub.A. In order to release the nut 6, the final acting thread moment of friction M.sub.A and the first moment of friction M.sub.1 have to be overcome. The nut 6 is released independently of the second moment of friction M.sub.2 acting between the blower wheel 7 and the cone 37 of the shaft 3. In order to release the nut 6, rotation of the blower wheel 7 is not required since the nut 6 can be rotated in relation to the blower wheel 7 after the first moment of friction M.sub.1 is overcome.
(33) In an embodiment, a third of the operating moment acting on the blower wheel 7 is transmitted to the shaft 3 via the acting thread moment of friction M.sub.A and two-thirds thereof is transmitted to the shaft 3 via the second moment of friction M.sub.2. As a result, for the releasing of the nut 6 from the shaft 3, only the acting thread moment of friction M.sub.A of a magnitude of a third of the operating moment plus the first moment of friction M.sub.1 between the nut 6 and the hub 23 has to be overcome. The first moment of friction M.sub.1 is coordinated in such a manner that it is only slightly greater than the thread moment of friction M.sub.G. This ensures that the relative movement does not take place between the hub 23 and the nut 6, but rather between the nut 6 and the shaft 3. Accordingly, in order to release the nut 6, a moment of somewhat more than two-thirds of the operating torque has to be applied.
(34)
(35) In an embodiment, the shaft cone angle is at maximum one degree, in particular at maximum half a degree, larger than the hub cone angle . If the hub cone angle and the shaft cone angle differ, the contact surface angle between the second friction contact surface 13 and the rotational axis 4 of the shaft 3 corresponds to the shaft cone angle .
(36) As
(37) The fastening of the blower wheel 7 that is shown in the embodiment can be used in handheld work apparatuses which have a blower wheel 7, such as, for example, suction apparatuses or the like. Such an automatically retightening fastening of the blower wheel 7 is not only restricted to blower wheels 7 for conveying working air. The blower wheel 7 can in particular also be a blower wheel for conveying cooling air, in particular cooling air for the combustion engine.
(38) It is understood that the foregoing description is that of the preferred embodiments of the invention and that various changes and modifications may be made thereto without departing from the spirit and scope of the invention as defined in the appended claims.