The disclosure relates to a lifting device on a heavy goods vehicle for lifting and emptying waste collection containers.
Such a lifting device for handling and emptying waste collection containers is known, for example, from WO-A-2012/032438. The lifting device described therein has a coupling tool for coupling to a waste collection container, and is provided with a rotating platform and a support attached thereon for a telescopically extensible boom. The support has interleaved C profiles, which are telescopically displaceable. The boom is fastened on the free end region of the support so it is vertically pivotable about a pivot axis. Furthermore, a pivot cylinder is provided between the boom and the support, to move the boom into a specific pivot angle in relation to the horizontal.
The C profiles of this lifting device have oval openings to save weight, whereby the support of the above lifting device has a lower torsional stiffness. Furthermore, the construction of the suspension of the boom at the upper end of the telescopically extensible support is relatively weak. Possible oscillations of a waste collection container to be lifted can thus not be damped enough, whereby a greater risk of accidents exists.
It is the object of the present invention to improve a lifting device of the above-mentioned type so that the construction of the lifting device is substantially more stable and has greater torsional stiffness, to be able to absorb possible oscillations of a lifted waste collection container sufficiently and therefore to be able to greatly reduce the risk of accidents.
This object is achieved by a lifting device on a heavy goods vehicle having features described herein.
The lifting device according to an embodiment of the present invention has the great advantage that, in addition to the advantages of the known lifting device, it has substantially greater stability due to great stiffness and enables secure and nonhazardous operation.
Further advantages of the invention will be appreciated from a review of the following description, in which embodiments of the invention are explained in greater detail on the basis of an exemplary embodiment illustrated in the schematic drawings. In the figures:
In the figures, the same elements are provided with the same reference signs, if not otherwise indicated.
The crane 4 is visible in larger details in
The carrier head 7 is L-shaped having a carrier plate 34 overhanging the support 6 and consists of two identical parts 35 and 36, which comprise an essentially trapezoidal basis and are manufactured in solid form from a metal, preferably steel. The two parts 35 and 36 are extended downwardly on the left side shown in the figures by the trapezoidal carrier plate 34 and are connected to one another in the region of the carrier plate 34 by a cross tube or torsion tube 37. Above the cross tube 37, the pivot axis 38 of the boom 8 is arranged, and below the cross tube 37, an axis 39 is provided between the parts 35 and 36, which is used to support the pivot cylinder 12.
The platform 5 consists of two circular disks 40 and 41, which are connected to one another with spacing by a ring-shaped jacket 42. The lower fixed tube 21 penetrates the upper disk 40 and stands with its lower end on the lower disk 41. This metallic fixed tube 21 is welded on the circumference at the through borehole on the upper disk 40 and at the lower end on the lower disk 41. A very stable and torsionally-rigid connection is thus ensured between the support 4 and the platform 5.
The internal runners 15 and 16 are produced from a structural steel or fine-grained steel having the designation ST37 to ST52 and Domex 700 having a permissible tension of 420 N/mm2 to 1200 N/mm2, and have a material thickness of 4 to 10 mm. The internal runners 15 and 16 furthermore have a hexagonal footprint having two parallel longer sides than the other sides. It is obvious that other footprints are also suitable for the stability of the support 6. For example, a rectangular or pentagonal footprint could be provided. However, it has been shown that the hexagonal footprint has a particularly high torsional stability.
As shown in
The two internal runners or vertical telescopes 15 and 16 are equipped with a distance measuring system having a resolution of 0.5 mm. Therefore, any vertical point (ordinate) can be freely programmed and approached by means of the electronic controller.
The boom 8, which consists of multiple telescopically extensible runners, is also equipped with a similar distance measuring system having a resolution of 0.5 mm. Therefore, any horizontal point (abscissa) can be freely programmed and approached by means of the electronic controller.
The functions of the lifting device or crane 4 are shown in
As is apparent from
In general, in the following claims, the terms used should not be construed to limit the claims to the specific embodiments disclosed in the specification and the claims, but should be construed to include all possible embodiments along with the full scope of equivalents to which such claims are entitled.
Number | Date | Country | Kind |
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528/14 | Apr 2014 | CH | national |
Filing Document | Filing Date | Country | Kind |
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PCT/IB2015/051980 | 3/18/2015 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2015/150956 | 10/8/2015 | WO | A |
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1 008 537 | Jun 2000 | EP |
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European Patent Office, International Search Report, dated Jun. 25, 2015, 3 pages. |
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Number | Date | Country | |
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20170183152 A1 | Jun 2017 | US |