US2007011833A1PendingUtilityA1
Method and device for the production of adjusting shafts
Est. expiryDec 12, 2023(expired)· nominal 20-yr term from priority
B24B 5/50F16C 1/02B24B 29/04B23P 15/00B24B 5/38B24B 29/005
32
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Claims
Abstract
Adjusting shafts ( 1;2 ) comprising a noise-insulating outer sleeve ( 1.3; 2.3 ) and shaft ends ( 1.1; 1.2; 2.1 ) that are free therefrom are produced in a brushing device by moving rotating brushes ( 4; 5 ) to an inserted shaft bar ( 3 ) which is provided in an uninterrupted manner with the outer sleeve and removing the outer sleeve in the area of the shaft ends in a brushing-off process. Advantageously, one respective continuous section (a; b) of the shaft ends of two adjusting shafts located one behind another is brushed off, whereupon the two shaft ends are separated from each other.
Claims
exact text as granted — not AI-modified1 . A method for manufacturing adjustment shafts ( 1 ; 2 ) comprising a metallic shaft and a noise-abating, non-metallic external cladding ( 1 . 3 ; 2 . 3 ) situated between cladding-free shaft ends ( 1 . 1 ; 1 . 2 ; 2 . 1 ), where, starting with a metallic shaft strand ( 3 ) continuously fitted with said external cladding, said cladding is removed in the zone (a; b) of the shaft ends ( 1 . 1 ; 1 . 2 ; 2 . 1 ) by at least one externally applicable brush ( 4 or 5 ).
2 . The method as claimed in claim 1 , where the external cladding ( 1 . 3 ; 2 . 3 ) is removed along the zone (a: b) of axially continuous shaft ends ( 1 . 2 ; 2 . 1 ) of two consecutive adjustment shafts ( 1 ; 2 ) and thereupon the shaft strand ( 3 ) is severed in a transition region of the shaft ends ( 1 . 1 ; 1 . 2 ; 2 . 1 ).
3 . The method as claimed in claim 1 , wherein at least one brush ( 4 or 5 ), in particular in the form of a motor-driven rotary brush, is approached radially.
4 . The method as claimed in claim 3 , wherein at least one externally and preferably radially approachable brush ( 4 or 5 ) is pivoted tangentially about the metallic shaft strand ( 3 ) in the sense of a progressive peripheral removal of the external cladding ( 1 . 3 ; 2 . 3 ) from said strand.
5 . The method as claimed in claim 1 , wherein the brush ( 4 or 5 ) is approached in a manner that the radial length of its bristles ( 4 . 1 or 5 . 1 ) operationally extends maximally as far as the peripheral surface of the bared shaft ends ( 1 . 1 ; 1 . 2 ; 2 . 1 ).
6 . The method as claimed in claim 1 , wherein the shaft strand ( 3 ) is fitted in the region of the bared shaft-ends ( 1 . 1 ; 1 . 2 ; 2 . 1 ) with a geometrically interlocking torque transmitting connector of which an outer contour deviates from the circular form and in particular is square.
7 . Equipment with which to manufacture adjustment shafts ( 1 ; 2 ) comprising a metallic shaft and a noise-abating non-metallic external cladding ( 1 . 3 ; 2 . 3 ) wherein between the shaft ends ( 1 . 1 ; 1 . 2 ; 2 . 1 ) the shaft is bared of said cladding, at least one rotary brush ( 4 or 5 ) being provided which can be applied, in particular radially, to a metallic shaft strand ( 3 ) continuously fitted with the external cladding ( 1 . 3 ; 2 . 3 ) and which can be pivoted about said strand when being moved toward it in a manner that said cladding, having at least one rotary brush ( 4 or 5 ) which can be approached in the region of the free shaft ends ( 1 . 1 ; 1 . 2 ; 2 . 1 ) by the rotary brush ( 4 or 5 ).
8 . The equipment as claimed in claim 7 , wherein at least two rotating brushes ( 4 or 5 ) are preferably configured at the periphery of the shaft strand ( 3 ) in a mutually opposite manner and are radially approachable.
9 . The equipment as claimed in claim 7 , wherein the rotating brushes ( 4 or 5 ) are received in a support, in particular a brush head ( 6 ) configured to be rotatable about and concentric with the shaft strand ( 3 ).
10 . The equipment as claimed in claim 9 , wherein shafts ( 4 . 2 ; 5 . 2 ) of the rotating brushes ( 4 or 5 ) are each parallel to and radially offset from an axis ( 6 . 1 ) of the brush head ( 6 ) and are affixed in the brush head.
11 . The equipment as claimed in claim 9 , wherein the brush head ( 6 ) is axially displaceable relative to the shaft strand ( 3 ).
12 . The method as claimed in claim 2 , wherein at least one brush ( 4 or 5 ), in particular in the form of a motor-driven rotary brush, is approached radially.
13 . The equipment as claimed in claim 8 , wherein the rotating brushes ( 4 or 5 ) are received in a support, in particular a brush head ( 6 ) configured to be rotatable about and concentric with the shaft strand ( 3 ).
14 . The equipment as claimed in claim 10 , wherein the brush head ( 6 ) is axially displaceable relative to the shaft strand ( 3 ).Join the waitlist — get patent alerts
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