Crane
10723598 ยท 2020-07-28
Assignee
Inventors
Cpc classification
B66C23/823
PERFORMING OPERATIONS; TRANSPORTING
B66C23/66
PERFORMING OPERATIONS; TRANSPORTING
B66C23/825
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
The invention relates to a crane, in particular to a mobile crane, comprising a lattice boom, a derrick boom, and a boom guying led from the derrick boom to the boom tip, wherein at least one guying frame is provided that is fastened to the boom between the derrick boom and the boom tip and is connected to the boom guying.
Claims
1. A crane comprising a lattice boom, a derrick boom, and a boom guying guided from the derrick boom to a boom tip of the lattice boom, wherein at least one boom guying frame is fastened to the lattice boom between the derrick boom and the boom tip and is connected to the boom guying; wherein the at least one boom guying frame has a spatial lattice structure and comprises at least two side elements connected to one another along a length of the at least one boom guying frame, and each strand of the boom guying extending from the derrick boom to one of the at least two side elements and then to the boom tip, where the at least one boom guying frame transmits compressive forces and transverse forces to apply the compressive forces and the transverse forces to the lattice boom over the boom guying during crane operation; and wherein the boom guying is a luffing drive that operates the lattice boom.
2. The crane in accordance with claim 1, wherein the boom guying comprises two strands and each strand extends from the derrick boom to one of the at least two side elements of the boom guying frame, then to one of at least two side elements of a second boom guying frame, and then to the boom tip.
3. The crane in accordance with claim 1, wherein the spatial lattice structure is constructed from fiber composite materials and extends along the length of the at least one boom guying frame and across the at least two side elements.
4. The crane in accordance with claim 1, wherein the at least one boom guying frame is designed as rectangular or V-shaped or trapezoidal.
5. The crane of claim 4, wherein the at least one boom guying frame spreads the boom guying.
6. The crane in accordance with claim 1, wherein the at least one boom guying frame is supported at the lattice boom pivotable about a pivot axis perpendicular to a longitudinal boom axis or is fixedly connected to the lattice boom.
7. The crane in accordance with claim 1, wherein the boom guying is supported or guided movably at the at least one boom guying frame.
8. The crane in accordance with claim 1, wherein the at least one boom guying frame is attached in a middle boom region.
9. The crane in accordance with claim 1, wherein exactly one boom guying frame is arranged at the lattice boom so that a remaining main boom length from a topmost boom guying frame up to the boom tip amounts to approximately a third of a total main boom length and the lattice boom is comprised of a single boom section.
10. The crane in accordance with claim 1, wherein the at least one boom guying frame is suitable to take up tensile forces acting on the lattice boom and the derrick boom.
11. The crane in accordance with claim 1, wherein the length of the at least one boom guying frame is adjustable during or outside of crane operation.
12. The crane of claim 1, wherein the at least one boom guying frame transmits compressive forces to the lattice boom over the boom guying during crane operation.
13. The crane of claim 1, wherein construction of the at least one boom guying frame transmits transverse forces to the lattice boom over the boom guying during crane operation.
14. The crane in accordance with claim 1, wherein the boom guying is rigidly connected to the at least one boom guying frame.
15. The crane in accordance with claim 1, wherein a plurality of frames are arranged behind one another so that a remaining main boom length from a topmost boom guying frame up to the boom tip amounts to approximately a third of a total main boom length.
16. The crane in accordance with claim 1, wherein the length of the at least one boom guying frame is adjustable during crane operation.
17. The crane in accordance with claim 1, wherein each strand of the boom guying is connected to an adjustment block positioned between the derrick boom and the at least one boom guying frame.
18. A crane comprising a lattice boom, a derrick boom, and a boom guying guided from the derrick boom to a boom tip of the lattice boom, wherein at least one boom guying frame is fastened to the lattice boom between the derrick boom and the boom tip and is connected to the boom guying; wherein the at least one boom guying frame has a spatial lattice structure and comprises at least two side elements connected to one another along a length of the at least one boom guying frame, and each strand of the boom guying extending from the derrick boom to one of the at least two side elements and then to the boom tip, and each strand of the boom guying is connected to an adjustment block positioned between the derrick boom and the at least one boom guying frame, where the at least one boom guying frame transmits compressive forces and/or transverse forces to apply the compressive forces and/or the transverse forces to the lattice boom over the boom guying during crane operation; and wherein the boom guying is a luffing drive that operates the lattice boom.
Description
BRIEF DESCRIPTION OF THE FIGURES
(1)
(2)
(3)
(4)
(5)
(6)
(7)
DETAILED DESCRIPTION
(8) To reduce the lateral deformation of the boom system decreasing the payload and to reduce the influence of load-induced bending moments, an additional guying frame system has been developed that, unlike previous additional guying systems, can also take up compressive forces and transverse forces. The previous additional guying devices could not do this.
(9)
(10) The derrick boom 40 is in a predefined position in crane operation. On the luffing of the main boom 10, the rope arrangement of the adjustment block 41 of the derrick boom 40 is retracted or let out. The geometrical relationships between the derrick boom 40, the boom guying 20, the guying frame 30, and the boom 10 hereby change.
(11) The connection of the guying frames 30 to the boom 10 is designed as pivotable about a pivot axis perpendicular to the longitudinal boom axis. Alternatively, the guying frames 30 can, however, also be fixedly connected to the boom system.
(12) It is important for the design of the guying 20 that the guying frame or frames 30 hold the guying 20 above the boom 10 wherever possible. This is shown, for example, in
(13) In order to additionally increase the effect of the guying frame 30, the latter can also be of V-shaped or trapezoidal construction, as can be seen, for example, from
(14) A further profitable application of the guying frame 30 in accordance with the invention comprises the latter likewise reducing the bending moment MB acting on the boom systemduring the crane work due to its construction stiff with respect to compression. This applies all the more to steep boom positions.
(15) As can be seen from
(16) The same result is furthermore produced in a crane to whose main boom 10 a luffable lattice tip 12 or an additional boom connected in an articulated manner is fastened. Bending moments MB occurring in the region of the guying frame 30 can also be substantially compensated here by the introduction of a compressive force FD over the guying frame 30.
(17) The essential inventive features of the guying 20 in accordance with the invention or of the guying frame 30 will again be given in the following. The guying frame 30 can likewise take up both tensile forces and lateral forces in addition to compressive forces. This is achieved, for example, by a rectangular or trapezoidal or V-shaped construction of the guying frame 30 that is set up as a spatial guying frame from a lattice structure. The boom system can be equipped with a single guying frame 30 or with a plurality of frames 30 arranged behind one another. The guying frames can furthermore be designed as foldable to vary their angles with respect to the boom 10. An adaptation of the spreading can also be possible in the spatial design of the guying frame 30 to be able to set the resulting spread of the guying 20.