Boom system having a retracted position which reduces installation space
11536042 · 2022-12-27
Assignee
Inventors
- Jens Häfner (Stuttgart, DE)
- Peter Mögle (Leinfelden-Echterdingen, DE)
- Ansgar Müller (Stuttgart, DE)
- Knut Kasten (Ostfildern, DE)
Cpc classification
International classification
Abstract
A boom system for a concrete-delivery device includes a plurality of booms which are pivotably interconnected. At least one of the booms has a recess along its length, the recess configured to at least partially receive an adjacent boom when the boom system. is in a retracted position. Side walls of the boom are extended to define the recess in the form of a channel. The recess may have a depth greater than or equal to a height of the adjacent boom so that the adjacent boom is received within the recess when the boom system is in the retracted position. Alternatively, the recess may have a depth less than a height of the adjacent boom so that the adjacent boom is only partially received in the recess when the boom system is in the retracted position.
Claims
1. A boom arm system for a concrete delivery device, where said boom arm system is formed from a plurality of boom arms connected pivotably to one another and of which at least one boom arm in longitudinal extent has a recess which is configured in such a manner that, in a folded-in position of the boom arm system, said recess serves for accommodating an adjacently arranged boom arm having a narrower cross section, wherein the at least one boom arm comprises a pipe holder that projects out and the boom arm having a narrower cross section has a pipe holder that projects out of said recess in the folded-in position of the boom arm system.
2. The boom arm system of claim 1, wherein the recess is formed on an upper chord or lower chord of the at least one boom arm.
3. The boom arm system of claim 2, wherein the recess along the at least one boom arm is defined between side walls of the at least one boom arm and the side walls extend beyond the upper chord or the lower chord.
4. The boom arm system of claim 2, wherein the recess is defined by a cross section shape of the upper chord or lower chord.
5. The boom arm system of claim 1 wherein the recess extends over a length of the at least one boom arm.
6. The boom arm system of claim 1 wherein the boom arm having a narrower cross section has a height, the recess has a depth equal to or greater than said height, and the recess completely accommodates the boom arm having a narrower cross section.
7. The boom arm system of claim 1, wherein the boom arm having a narrower cross section has a height, the recess has a depth less than the height and the recess partially accommodates the boom arm having a narrower cross section.
8. The boom arm system of claim 7, wherein, in the folded-in position, the boom arm having a narrower cross section has a first portion that extends into the recess in a second portion that extends into another recess of a second adjacent boom arm of said plurality of boom arms.
9. The boom arm system of claim 8, wherein the boom arm having a narrower cross section is substantially completely accommodated by the recess and other recess.
10. The boom arm system of claim 1, wherein at least one of the plurality of boom arms is at least partially formed from either a composite material or a fiber composite material.
11. The boom arm system of claim 1, wherein side walls that define the recess have a thicker wall thickness (D) than a wall thickness (d) of side surfaces (S) of profiles of the plurality of boom.
12. The boom arm system of claim 1, wherein the recess is defined by side walls and one side wall of the recess has a groove configured to accommodate one of the pipe holders in the folded-in position whereby the one of the pipe holder in the folded-in position does not act upon or touch the one side wall.
13. The boom arm system of claim 1, wherein at least one of the pipe holders are arranged in such a manner that the at least one pipe holder comes to lie in the folded-in position at an end of the recess.
14. A concrete delivery device having a boom arm system according to claim 1.
15. The boom arm system of claim 1, wherein each the plurality of boom arms has axial ends adapted to include a joint region.
16. A boom arm system for a concrete delivery device, said boom system comprising: a first boom having a hollow cross section and a recess; a second boom having a hollow cross section, a pipe holder, and being pivotally connected to the first boom; a third boom having a hollow cross section and a recess and being pivotably connected to the second boom; and at least one of the first and third booms comprising a pipe holder, wherein, in a folded-in position of the boom arm system, the second boom has respective portions that extend into the recesses of the first and third booms and the pipe holder of the second boom either projects out of one of the recesses or is adjacent an end of one of the recesses.
17. A boom arm system for a concrete delivery device, said boom system comprising: a first boom having a hollow cross section, a recess and a pipe holder; a second boom having a hollow cross section, a pipe holder, a recess and being pivotally connected to the first boom; and a third boom having a hollow cross section and a pipe holder, and being pivotably connected to the second boom, wherein, in a folded-in position of the boom arm system, the second boom extends into the recess of the first boom and the third boom extends into the recess of the second boom, wherein the pipe holder of the second boom either projects out of the recess of the first boom or is adjacent an end of the recess of the first boom, and wherein the pipe holder of the third boom either projects out of the recess of the second boom or is adjacent an end of the recess of the second boom.
Description
BRIEF DESCRIPTION OF THE DRAWING
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DETAILED DESCRIPTION
(9) Identical and similar features illustrated in the individual figures are denoted by the same reference signs.
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(11) In the folded-in position illustrated, the two boom arms A1, A2 lie one above the other, as is the case in many folded-in positions. The boom arm A1 lying at the top in the illustration of
(12) In the exemplary embodiment illustrated, the recess 12 is formed on a lower wall UG of the upper boom arm A1. For example, the recess 12 can be formed by extenders of left and right side walls S of the boom arm A1. The side walls S project here beyond the lower wall UG in such a manner that the resultantly formed extensions V1 form the recess 12 having a depth for accommodating some or all of the cross sectional height of the adjacent boom arm A2. Alternatively, the extensions V1 and the boom arm A1 can also be formed by placing two U profiles on each other. Possible production variants are readily revealed to a person skilled in the art.
(13) The clear width of the recess 12, i.e. the distance between the two extensions V1, is somewhat wider than the cross section of the lower boom arm A2, and therefore the latter in the folded-in position of the boom arms A1, A2 is accommodated in the recess 12.
(14) In the exemplary embodiment illustrated, the extensions V1 of the upper boom arm A1 protrude over the height of the lower boom arm A2 approximately by up to half thereof. The lower boom arm A2 is therefore partially accommodated in the recess 12 lying thereabove. However, the dimensions of the recess and of the boom arms can also be selected in such a manner that the lower boom arm is accommodated in terms of height substantially completely or completely in the recess, as is indicated in the exemplary embodiment of
(15) It should be emphasized that the illustrated and described arrangement is also reversible, and therefore the lower boom arm has a recess, which is formed on the upper wall thereof, for accommodating the cross-sectionally narrower boom arm lying thereabove.
(16) A combination is also possible, as is illustrated in the exemplary embodiment of
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(18) The pipe holders R2 of the boom arm A2 which comes to lie in one or both of the recesses 12, 14 of the adjacent boom arms A1, A3 are positioned in such a manner that they project out of the recess 12, 14. This takes place, for example, by arranging the pipe holder R2 in the region of an end or an edge 20 of the boom arm A2 that lies outside the relevant recess 12 (cf.
(19) Alternatively, the pipe holder—as illustrated in
(20) The described extensions on the hollow profiles of the accommodating boom arms contribute to the rigidity of the boom arm construction. In addition, the described extensions can (at least partially) have a greater wall thickness D than the wall thickness d of the side walls S of the accommodating boom arms A1, A3, as is indicated in the figures. The contribution made by the extensions to the rigidity is thereby improved. The formation of greater wall thicknesses on the extensions can be configured in a simple manner in particular when an accommodating boom arm is produced by joining two U profiles to each other. Particularly in one refinement, variable wall thicknesses can readily be realized by means of CFRP.
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(22) The first boom arm A1 has a side wall thickness dl on its hollow profile while the extensions V1 forming the recess 12 of the first boom arm A1 have (continuously) a thicker wall thickness D1. The wall thickness ratios of the second boom arm A2 have already been described above with reference to
(23) The pipe holders R1 and R3 of the first and the third boom arm A1 and A3 are arranged similarly as in the refinements of
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(26) The invention provides a boom arm system for a concrete delivery device which is formed from a plurality of boom arms connected pivotably to one another, wherein one boom arm is inserted into a recess formed in an adjacently lying boom arm in order to reduce the overall height in the folded-in position. The insertion takes place over substantially the entire length of the arm. The invention makes it possible for the construction space of a concrete pump to be used more effectively, and therefore lighter and stiffer arms can be constructed.