This application claims the priority of German Patent Application, Serial No. DE 10 2013 205 173.5, filed on Mar. 18, 2013, pursuant to 35 U.S.C. 119(a)-(d), the content of which is incorporated herein by reference in its entirety as if fully set forth herein.
The invention relates to a lattice mast element, a lattice boom comprising at least one lattice mast element of this type and crane comprising at least one lattice boom of this type.
Lattice mast cranes have been known from prior art for a long time. A cross-sectional area of a lattice boom can be increased to ensure increasing load bearing capacities. An excess cross-sectional area of a lattice boom having a width of more than 4 m and a height of more than 3 m, for example, leads to problems in the transport of the lattice boom.
EP 2 253 575 A1 discloses a backstay spreader for a crane. A foldable spreader is used to spread a double-strap backstay section for a lifting crane.
EP 0 609 998 A1 discloses a longitudinally divided lattice mast crane which allows the lattice mast to be separated in a symmetry plane in such a way that the lattice mast is transportable with a reduced height.
DE 10 2011 108 236 A1 discloses a lattice section for a crane in which four corner posts interconnected by means of a plurality null bars and diagonal bars, the diagonal bars being actuable in such a way that the height of the lattice section is variable between a working arrangement and a transport arrangement.
US 2012/0110946 A1 discloses a lattice boom which is foldable both along its width and along its height. A lattice boom of this type has a very complex folding mechanism.
US 2002/0053550 A1 discloses a lattice mast element in the form of a connectable framework structure. Frames can be produced from bars and connection elements, the frames being oriented perpendicular to the longitudinal direction of the lattice mast element. A lattice mast element of this type has a reduced stiffness.
DE 10 2006 060 347 B4 discloses a lattice section for a large mobile crane. The lattice section comprises corner posts, null bars and diagonal bars.
NL 1 035 078 C discloses a dividable, longitudinally divided lattice mast element which can be divided for a transport arrangement and transported separately from each other.
NL 1 031 331 C discloses a lattice mast crane comprising two lattice booms. One of the lattice booms has an increased lattice mast element width in a central region.
An object of the present invention is to further develop a lattice mast element for a lattice mast in such a way as to have high load bearing capacity on the one hand while being easily transportable on the other, the lattice mast element having an increased stiffness in particular in a predefinable direction although less material is required.
This object is achieved according to the invention by a lattice mast element for a crane, comprising at least two longitudinal elements, a transverse element interconnecting the longitudinal elements, and at least one bracing element for bracing the lattice mast element by interconnecting the longitudinal elements and/or the transverse element, wherein the longitudinal elements and the transverse element define a load bearing surface of the lattice mast element, and the longitudinal elements are each configured as a two-dimensional load bearing structure.
According to the invention, it was found that a lattice mast element having at least two longitudinal elements and a transverse element interconnecting the longitudinal elements obtains a particularly high lateral stiffness, in other words in a transverse direction defined by the transverse element, due to the fact that the longitudinal elements, which are each configured as a two-dimensional load bearing structure, are arranged at a distance from each other. The longitudinal elements and the transverse element form a frame for the lattice mast element. The longitudinal elements are side walls, arranged opposite to each other, of the frame. The transverse element forms an intermediate wall disposed between the side walls. If only one transverse element is provided, the frame is open towards at least one side that is opposite to the transverse element. It is conceivable as well to use more than one transverse element. In this case, it is possible to form a closed frame for the lattice mast element. The frame formed by the longitudinal elements and the transverse element defines a load bearing surface. The load bearing surface is arranged parallel to the lattice mast longitudinal axis. The frame-like side wall formed by the respective longitudinal elements and the frame-like intermediate wall formed by the transverse element define the frame. The intermediate wall has a transverse surface oriented perpendicular to the lattice mast element longitudinal axis. In particular, this allows a plurality of lattice mast elements according to the invention to be arranged one behind the other along the lattice mast longitudinal axis. In other words, the frame-like lattice mast elements are in particular arrangeable in such a way that the individual load bearing surfaces of the lattice mast elements define a common, plane load bearing surface. In particular, the load bearing surfaces are not arranged at a distance from each other along the lattice mast longitudinal axis. The lattice mast elements according to the invention and the lattice mast according to the invention differ from the former prior-art approach to arrange hollow-profile lattice mast elements one behind the other along the lattice mast longitudinal axis. Compared to the hollow profile configuration, a profile element longitudinal axis of the lattice mast elements according to the invention is oriented perpendicular to the lattice mast longitudinal axis.
The longitudinal elements are in particular configured in one piece, in other words they are not dividable. The longitudinal elements may also be configured in multiple pieces, in particular such as to be interconnectable by plugging. In particular, individual components of the longitudinal elements may be interconnected detachably, in particular using bolts. The longitudinal elements are in particular plane. The longitudinal elements are substantially arranged along a lattice mast element longitudinal axis and are in particular configured identically. The lattice mast element longitudinal axis is parallel to the x-axis of a Cartesian coordinate system. It is conceivable as well to provide a plurality of transverse elements, in other words in particular at least two transverse elements. The function of the transverse elements is in particular to interconnect the longitudinal elements in a detachable or articulated manner. The transverse elements are oriented transversely and in particular perpendicular to the lattice mast element longitudinal axis. The transverse elements are parallel to a y-axis of the Cartesian coordinate system and oriented in particular in a plane parallel to the yz-plane. The lattice mast element according to the invention has a modular configuration in the form of a three-dimensional load bearing structure having a comparatively high stiffness, the load bearing structure comprising a plurality of, in particular at least two, two-dimensional load bearing structures in the form of the longitudinal elements. The longitudinal elements and the transverse elements define a load bearing surface of the lattice mast element. The load bearing surface is parallel to the xz-plane of the Cartesian coordinate system. The two-dimensional load bearing structures are in particular perpendicular to the load bearing surface, in other words they are parallel to the z-axis of the Cartesian coordinate system. Because the longitudinal elements are configured as two-dimensional load bearing structures themselves, they have a comparatively high intrinsic stiffness in their plane, in other words the xy-plane. Using the transverse elements, the three-dimensional load bearing structure of the lattice mast element is braced additionally, in particular in the yz-plane. At the same time, less material is required to produce the lattice mast element since only few weight-reduced transverse elements are used between the longitudinal elements. The lattice mast element according to the invention has an increased stiffness although less material is used. The lattice mast element has a low specific weight in relation to the stiffness of the cross-section. The in particular detachable and/or articulated connection of the longitudinal elements using the transverse elements allows the lattice mast element to be converted from a working arrangement having a maximum load bearing surface with a maximum lattice mast element width into a transport arrangement having a minimum load bearing surface with a minimum lattice mast element width. In the case of a maximum load bearing surface, the longitudinal elements have a maximum distance from each other along the y-axis. This ensures a particularly high stiffness of the lattice element along the y-direction. A lattice mast element of this type can for example be used for a lattice boom of an assembly crane. A lattice mast element of this type is adapted to absorb particularly high lateral forces, in particular along the y-axis. The minimum load bearing surface ensures a particularly advantageous, space-saving transportation of the lattice mast element in the transport arrangement. In the transport arrangement, the lattice mast element according to the invention is in particular transportable in a transport unit on roads, on rails and on waterways. In particular, permissible transport dimensions such as a maximum transport width of 3 m and a transport height of 4 m are not exceeded.
The lattice mast element has at least one bracing element for bracing the lattice mast element by interconnecting the longitudinal elements and/or the transverse element. As a result, the lattice mast element is braced additionally. In order to brace the lattice mast element, at least one bracing element is used which is in particular provided in an articulated and/or detachable manner to connect the longitudinal elements and/or the transverse elements. The at least one bracing element interconnects one longitudinal element with the transverse element to brace a corner region between the longitudinal element and the transverse element. Generally, it is conceivable as well that the at least one bracing element interconnects two longitudinal elements. The bracing element is arranged within the load bearing surface and/or in an edge region of the load bearing surface. If more than one bracing elements are provided, they may be arranged in two bracing element planes arranged at a distance from each other. The bracing element planes are arranged at a distance from each other in particular along a height, in other words along a z-axis. The bracing element plane is identical to the load bearing surface or is oriented at an angle of inclination thereto. In a lattice mast element, the longitudinal elements may follow a conical path along the lattice mast element longitudinal axis. The longitudinal elements themselves are, in other words, configured in the shape of a trapezoid. The trapezoidal shape of the longitudinal elements defines an angle of inclination. The load bearing surface, in other words the bracing element plane, is arranged at said angle of inclination relative to a respective projection surface oriented parallel to the lattice mast longitudinal axis. If the angle of inclination exceeds a maximum angle of inclination, the bracing elements are preferably oriented within the load bearing surface.
The bracing elements are not parallel to the lattice mast longitudinal axis. The maximum angle of inclination is for instance 5°, in particular at most 4°, in particular at most 3°, in particular at most 2°, in particular at most 1.5°. If the maximum angle of inclination is not exceeded, the bracing elements can be arranged parallel to the projection surface oriented parallel to the lattice mast longitudinal axis. In this case, the bracing element plane is not parallel to the load bearing surface. The bracing element plane and the load bearing surface are then arranged relative to each other at the angle of inclination mentioned above, said angle exceeding the maximum angle of inclination. In this case, the bracing elements are not parallel to the chord elements of the longitudinal elements. An arrangement of this type offers advantages in terms of the mechanical processing and production of a lattice mast element. The at least one bracing element is directly connected to the longitudinal elements and/or the transverse element
A lattice mast element having a lattice mast element width greater than a lattice mast element height oriented perpendicular to the load bearing surface, wherein in particular B>2·H, in particular B>3·H, and in particular B>4·H, has a particularly high transverse stiffness. A cross-sectional area of the lattice mast element oriented parallel to the yz-plane, which is in particular oriented perpendicular to the lattice mast element longitudinal axis, is in particular rectangular. The term “lattice mast element width” refers to a distance of the longitudinal elements from each other. The terms “lattice mast element height” and “lattice mast element width” are used independently of the orientation of the lattice boom mounted to a crane. They rather express the fact that the lattice mast element width is the width of the yz-cross sectional surface area and in particular the width of the load bearing surface. The lattice mast element height defines the height of the yz-cross-sectional area. In particular, the orientation of the lattice mast element height and lattice mast element width is independent of the orientation of a luffing axis about which a lattice boom may be articulated to a crane to allow for a luffing movement thereof.
A lattice mast element having a lattice mast element width adjustable between a minimum lattice mast element width and a maximum lattice mast element width by a variable arrangement of the longitudinal elements relative to each other allows the longitudinal elements to be variably arranged relative to each other to ensure a minimum lattice mast width of the lattice mast element in a transport arrangement and a maximum lattice mast width of the lattice mast element in a working arrangement. In particular, the transverse elements and/or bracing elements are detachable from the longitudinal elements to which they are connected in an in particular articulated manner to allow the remaining transverse elements and/or bracing elements articulated to the longitudinal elements to be pivoted. In other words, it is in particular conceivable for the lattice element to be foldable. The lattice mast element is in particular folded in such a way that the two longitudinal elements are moved towards each other to reduce the lattice mast element width, which is in particular maximal in the working arrangement, to a width, which is in particular minimal in a transport arrangement. Said folding process allows the lattice mast element to be rapidly and in particular easily converted from the working arrangement into the transport arrangement.
A lattice mast element having at least four bracing elements arranged parallel to the load bearing surface in an in particular rhombical shape within the in particular rectangular lattice mast element. The corners of the rhombus are each in particular arranged in the center of the sides of the lattice mast element. A lattice mast element of this type is braced in all directions in the xy-plane.
A lattice mast element in which the longitudinal elements are configured as a truss, a frame or a girder allows a particularly advantageous design of the longitudinal elements. When designed as a truss, the longitudinal elements may be provided with null bars and/or diagonal bars for bracing the truss. In the truss, tension bars and connection bars are interconnected. The tension bars and compression bars are for example configured as diagonal bars or upper and lower chord elements of the longitudinal elements. Alternatively, it is conceivable as well to design the longitudinal elements in the manner of a frame, in other words an assembly of bars having rigid corners, or in the manner of a girder, in other words as a single beam. In particular, the transverse elements and/or bracing elements may be configured as two-dimensional load bearing structures and in particular in the form of a truss comprising null bars and/or diagonal bars, as frames or as girders.
A lattice mast element in which the longitudinal elements and/or the transverse elements each have two chord elements arranged at a distance from each other along a height oriented parallel to the z-axis has an increased stiffness in a definable plane. The design of the chord elements themselves increases the stiffness of the longitudinal elements and the transverse elements in a direction perpendicular to a respective element plane, in other words the yz-plane or the xz-plane, respectively. The chord elements are in particular configured as hollow profile elements. The height is in particular perpendicular to the load bearing surface. The chord elements have an axial geometrical moment of inertia about the z-axis that is greater than an axial geometrical moment of inertia about a transverse axis oriented perpendicular to the z-axis. In the longitudinal elements, the transverse axis corresponds to the y-axis. In the transverse elements, the transverse axis corresponds to the x-axis. In either case, the transverse axis is oriented perpendicular to a plane spanned by the longitudinal element or the transverse element.
A lattice mast element comprising at least two transverse elements which, in a working arrangement of the lattice mast element, are interconnected in a torque-proof manner, in other words they are not articulated to each other, about a z-axis oriented perpendicular to the load bearing surface and which, in a transport arrangement of the lattice mast element, are interconnected about a z-axis oriented perpendicular to the load bearing surface in an articulated manner ensures an improved conversion from the transport arrangement into the working arrangement and vice versa. Due to the fact that at least two interconnected transverse elements are provided to interconnect two longitudinal elements, the flexibility for moving the lattice mast element from the transport arrangement into the working arrangement is increased. Said additional flexibility for moving the lattice mast element is provided by the articulated connection of the transverse elements about the z-axis. The torque-proof connection of the transverse elements in the working arrangement is in particular achieved in that the transverse elements are interconnected by two, in particular parallel pivot axes arranged at a distance from each other. At least one of the pivot axes may be arranged outside a plane defined by a transverse element. This pivot axis has a distance from the transverse element in particular along the x-axis. Said spaced-apart arrangement of the pivot axis in relation to the transverse element may be provided by at least one articulating element, in particular two articulating elements arranged at a distance from each other along the pivot axis. As a result, the lattice mast element of this type has a sufficient stiffness in the working arrangement despite the articulated connection of the transverse element in the transport arrangement.
A lattice mast element comprising in each case one connection element interconnecting the transverse elements ensures an improved flexibility when moving the lattice mast element from the transport arrangement into the working arrangement. In particular the interconnection between the transverse elements is improved. Folding the transverse elements relative to each other is improved as well. In particular, a sagging of the bracing elements in the xy-plane is reduced when moving from the transport arrangement in the working arrangement and vice versa.
In particular if a plurality of lattice mast elements are arranged one behind the other along the lattice mast element longitudinal axis, a lattice mast element having a rectangular load bearing surface, in other words a rectangular cross-sectional area in the xy-plane, allows a lattice boom to be produced which has a constant cross-section along the lattice mast element longitudinal axis. A lattice mast element having a trapezoidal load bearing surface allows a conversion from a greater cross-sectional area to a smaller cross-sectional area in the yz-plane along the lattice mast element longitudinal axis or vice versa. A lattice mast element of this type increases the variability when designing a lattice boom.
In a lattice mast element comprising at least one drive element for the driven displacement of the lattice mast element from a working arrangement into a transport arrangement and vice versa, the conversion from the transport arrangement into the working arrangement and vice versa is facilitated. By means of a drive element, which is for instance a telescopable piston cylinder unit that is in particular driven hydraulically pneumatically or by means of an electric motor, the longitudinal elements, the transverse elements and/or the bracing elements are pivotable relative to each other. In particular when it comes to large-size cranes the longitudinal elements, transverse elements and bracing elements of which may have a large weight, thus making it difficult for a person to fold them manually, providing a drive element for assisting the displacement of the mentioned elements is advantageous.
A lattice mast element in which the longitudinal elements and in particular the transverse elements are each made of multiple parts and in particular comprise a plurality of individual components which are interconnectable detachably, in particular using bolts, allows the longitudinal elements to be disassembled completely. When all connections between the individual components are removed, the individual components can be transported in the form of bars. In particular, it is not necessary to transport two-dimensional load bearing structures. The stiffness of the two-dimensional load bearing structures is ensured by interconnecting the individual components using bolts.
Another object of the invention is to provide a lattice boom, in particular for a crane, that provides a sufficient load bearing capacity of the crane in the working arrangement while at the same time ensuring an uncomplicated transport of the lattice boom.
This object is achieved according to the invention by a lattice boom comprising at least one lattice mast element strand, a head element connected to the at least one lattice mast element strand, and a foot element connected to the at least one lattice mast element strand, wherein the at least one lattice mast element strand comprises at least one lattice mast element according to the invention.
It was found according to the invention that a lattice boom that is luffable in particular about a luffing axis oriented in particular horizontally has at least one lattice mast element strand comprising at least one lattice mast element. In particular, the lattice mast element strand comprises a plurality of lattice mast elements arranged one behind the other along the lattice mast element longitudinal axis. The individual lattice mast elements are interconnected detachably, in particular using bolts. Other detachable connections between the individual lattice mast elements are conceivable as well. What is most important in this respect is that the lattice mast elements, which are each in the shape of a rectangular profile, are arranged in such a way that the load bearing surfaces, defined by the respective rectangular profiles, of the individual lattice mast elements are arranged in a common plane. This means that the load bearing surfaces are arranged adjacent to each other along the lattice mast element longitudinal axis. If a lattice boom has precisely one lattice mast element strand, said lattice mast element strand is in particular arranged in such a way that the lattice mast element width is oriented parallel to the luffing axis. The lattice mast element longitudinal axis is parallel to the lattice mast longitudinal axis. The lattice mast element height is perpendicular to the luffing axis, in particular perpendicular to a plane spanned by the lattice mast element width and by the lattice mast element length. The lattice mast element height is equal to the lattice mast height. Via a foot element connected thereto, the lattice mast element strand is articulated to a crane, in particular to a superstructure of a crane, in an in particular luffable manner A head element is provided at an end of the lattice mast element strand arranged opposite to the foot element. The advantages of the lattice boom substantially correspond to those of the lattice mast element to which reference is made. The foot element, the head element and the at least one lattice mast element arranged therebetween are in particular separable from each other for transporting the lattice boom. In particular, the mentioned elements are transported separately from each other.
A lattice boom comprising a plurality of lattice mast elements arranged one behind the other along a lattice boom longitudinal axis allows the length of the lattice boom to be set or adjusted along the lattice boom longitudinal axis to a required or desired length. The lattice boom longitudinal axis is parallel to the lattice mast element longitudinal axis.
Due to the two lattice mast element strands arranged parallel and/or at an angle relative to each other at least in sections, in particular at a distance from each other along a luffing axis, wherein the lattice mast elements are arranged in such a way that the lattice mast element strands have a lattice mast element strand height oriented perpendicular to a luffing axis at least in sections, said lattice mast element strand height being greater than a lattice mast element strand width oriented along the luffing axis, a lattice boom has an increased lateral stiffness and is in particular adapted to lift large loads. Compared to a lattice boom comprising only one single lattice mast element strand, the individual lattice mast elements of the lattice mast element strands in the lattice mast comprising two lattice mast element strands are rotated by 90° in relation to the lattice mast element longitudinal axis. This means that the lattice mast element width corresponds to a lattice mast element strand height. The lattice mast element height corresponds to the lattice mast element strand width. The lattice mast element strand height is identical to the lattice mast height. The lattice mast width is obtained from the respective lattice mast element strand width of the lattice mast element strands and a distance of the lattice mast element strands from each other in the direction of the luffing axis. It is possible that the lattice mast element strands are not arranged parallel to each other at least in sections. Correspondingly, the lattice mast width may be variable along the lattice mast longitudinal axis. The stiffness of a lattice boom in the z-direction, and therefore the load bearing capacity thereof may be limited due to maximum permissible transport dimensions. This transport problem can be solved by using a lattice mast element according to the invention for a lattice boom according to the invention. The lattice mast element is displaceable. This allows lattice mast element strands to be provided that have a lattice mast element strand height greater than a lattice mast element strand width. In particular, the lattice mast element strand height is a multiple of, in particular twice, in particular three times and in particular four times the lattice mast element strand width. In particular, the lattice mast element strands are detachable from each other.
Another object of the present invention is to provide a crane comprising a lattice boom, the lattice boom having an increased lateral stiffness while in particular being transportable in an uncomplicated manner.
This object is achieved according to the invention by a crane comprising at least one lattice boom according to the invention, the lattice boom being adapted to perform a luffing movement about a luffing axis.
It was found according to the invention that a crane comprising at least one lattice boom articulated about an in particular horizontal luffing axis in a luffable manner has an increased stiffness. A crane of this type is in particular an assembly crane, in particular for mounting a rotor to a wind power plant.
The resulting advantages for the crane substantially correspond to the advantages of the lattice mast element and the lattice boom to which reference is made.
Exemplary embodiments of the invention will hereinafter be explained in more detail with reference to the drawing.
A crane 1 shown in
The illustration in
In contrast thereto, a lattice mast element width B, shown in
In the illustrated lattice boom 11 according to the invention, the lattice mast element width B is parallel to the luffing axis 6 while the lattice mast elewent height H is perpendicular to the luffing axis 6. Both the lattice mast element width B and the lattice mast element height H are each perpendicular to the lattice boom longitudinal axis 13.
What is important is that the lattice boom 11 is considerably larger in the region of the lattice mast elements 15 along a direction, in this case a width parallel to the luffing axis 6, than in a direction, in this case a height, perpendicular thereto. As a result of the increased lattice mast element width B, which is in particular greater than twice the lattice mast element height H, in particular greater than three times the lattice mast element height H and in particular greater than four times the lattice mast element height H, the lattice mast element 15 has an increased lateral stiffness. A load bearing surface 19 is defined by the lattice mast element width B and by a lattice mast element length L oriented along the lattice mast longitudinal axis 13. The lattice mast element height H is oriented perpendicular to the load bearing surface 19, which is parallel to the xy-plane.
The lattice mast element 15 will hereinafter be explained in more detail with reference to
The longitudinal elements 21 are in each case interconnected at ends arranged opposite to each other along the lattice mast element longitudinal axis 20 by two interconnected transverse elements 22 oriented along the y-axis.
Both the longitudinal elements 21 and the transverse elements 22 spanning the rectangular load bearing surface 19 are each configured as two-dimensional load bearing structures. The two-dimensional load bearing structures 21, 22 are each oriented perpendicular to the load bearing surface 19. According to the Cartesian coordinate system in
In order to interconnect the transverse elements 22, a respective connection element 23 is provided that is arranged therebetween. The connection elements 23 allow the transverse elements 22 to be interconnected in a torque-proof manner in the working arrangement of the lattice mast element 15 according to
The bracing elements 24 are configured as two-dimensional load bearing structures as well.
The two-dimensional load bearing structures, in other words the longitudinal elements 21, the transverse elements 22, and the bracing elements 24, are in particular configured in one piece, in other words they are not dividable, and allow the total stiffness of the lattice mast element to be increased. The two-dimensional load bearing structures 21, 22, 24 are plane. In particular, the two-dimensional load bearing structures are each configured as a truss. It is conceivable as well for the two-dimensional load bearing structures to be configured as a frame or a girder.
In order to ensure a particularly advantageous displacement of the lattice mast element 15 from the working arrangement shown in
At an end arranged opposite to the connection element 23, the transverse elements 22 are pivotably connected to the longitudinal element 21 at a pivot axis 25 oriented parallel to the z-axis.
The conversion of the lattice mast element 15 from the working arrangement with the maximum lattice mast element width Bmax shown in
A preferred transport arrangement according to
It is possible as well to move the lattice mast element 15 shown in
The smallest transport length for the lattice element 15 according to
The design of a two-dimensional load bearing structure in the form of a longitudinal element 21 and in particular the design of the chord elements 28 used for this purpose will be explained in more detail in the following sections with reference to
The chord elements 28 have a flat, wide hollow profile shape. This improves a transverse stability and transverse stiffness of the longitudinal element 21 formed by the chord elements 28. The longitudinal elements 21 are side parts of the lattice boom. Due to the longitudinal elements 21, the lattice boom has an increased transverse stability and transverse stiffness, the longitudinal elements 21 being connected, via the bracing elements 24, to at least one transverse element 22 so as to be braced thereby. The transverse stability or transverse stiffness of the longitudinal element 21 refers to its resistance to a transverse load. The flat, wide chord elements 28 interconnected by null bars 29 and diagonal bars 30 produce a longitudinal element 21 that has an increased stiffness and stability in a height, in other words along the z-axis according to
In the following sections, the displacement of the adapter lattice mast element 14 from the working arrangement in
In order to move the adapter lattice mast element 14 from the working arrangement shown in
In particular, the angle of inclination may be greater than 15° or smaller than 15°. The longitudinal elements 21 are arranged relative to each other along the lattice mast element longitudinal axis 20 at the angle of inclination substantially as described above.
The most important difference compared to the preceding exemplary embodiment of a lattice mast element is that the transverse elements 22 of the lattice mast element 15 and the bracing elements 24 articulated thereto are directly interconnected. In particular, the use of a connection element 23 is not necessary. The interconnection between the elements is shown in the enlarged detail view according to
The lattice mast element 15 according to this embodiment has a simpler design because of the unnecessary connection element. In particular, a design of this type is weight-reduced and uncomplicated. In order to provide a sufficient amount of space between the longitudinal elements 21 in the transport arrangement for a displacement of the lattice mast element 15 from the working arrangement shown in
Despite the comparatively simple design of the lattice mast element without connection elements, it is possible to produce a torque-proof interconnection between the transverse elements 22. This is achieved in that the connection axes 27 are produced by openings in the transverse elements 22, the openings being arranged in pairs in such a way as to be flush with each other. The openings are arranged flush with each other only in the working arrangement of the lattice mast element according to
The lattice mast element 15 differs from the preceding exemplary embodiments in that by means of the connection element 33 two transverse elements 22 can be interconnected while four bracing elements 24 can be articulated thereto. Along the lattice mast element longitudinal axis 20, two of these four bracing elements 24 are arranged above the transverse elements 11 while the other two are arranged below the transverse elements 11. As a result, only one connection element 33 is required for one lattice mast element 15. A lattice mast element 15 according to the embodiment in
For the displacement from the working arrangement shown in
The lattice mast element 15 according to this embodiment substantially corresponds to the lattice mast element according to the embodiment in
In the working arrangement of the lattice mast element 15 shown in
The drive element 41 may also be a spindle drive or a hydraulic cylinder operated by means of an electric motor.
In the transport arrangement of the lattice mast element 15 shown in
The adapter lattice mast element 14 substantially corresponds to the adapter lattice mast element 14 shown in
A drive element 41 is provided to facilitate a displacement from the working arrangement of the adapter lattice mast element 14 shown in
The lattice mast element 15 differs from the preceding embodiments substantially in that the bracing elements 24 are arranged relative to the load bearing surface in a diagonal instead of a rhombical configuration. The longitudinal elements 21 are interconnected by in each case one transverse element 22. In order to displace the lattice mast element 15 from a working arrangement into a transport arrangement, the connections between the illustrated elements are removed. In particular because only five elements are required for each lattice mast element, namely two longitudinal elements 21, two transverse elements 22 and one bracing element 24, disassembly may be performed in a rapid and simple manner. It is in particular possible that only four connections, namely those in the corner regions of the load bearing surface, need to be removed to transport the two longitudinal elements 21. The two transverse elements 22 can be folded such as to abut against the sides of the bracing element 24. The effort required for a displacement from the transport arrangement into the working arrangement is reduced.
The lattice mast element 15 substantially corresponds to the lattice mast element 15 according to
In contrast to the exemplary embodiment according to
In particular, all individual components 50, 51 of the lattice mast element 15 according to
According to the actual exemplary embodiment according to
In a lattice mast composed of a plurality of lattice mast elements 15 according to the illustrated exemplary embodiment, the lattice mast elements 15 are arranged one behind the other along the lattice mast element longitudinal axis 20. This means that the intermediate walls formed by the transverse elements 22 are arranged at a distance from each other along the lattice mast element longitudinal axis 20 and perpendicular to the lattice mast element longitudinal axis 20 and in particular parallel to each other. For this purpose, the front ends of the longitudinal elements 21 are each provided with connection lugs 53. The connection lugs 53 extend along the lattice mast element longitudinal axis 20 and allow two adjacent lattice mast elements 15 to be interconnected using a bolt oriented in particular parallel to the transverse elements 22.
The lattice mast element substantially has a frame structure produced by the longitudinal elements 21 and the transverse elements 22. The frame structure has a flat rectangular hollow profile which defines the load bearing surface. A profile element longitudinal axis 54a extends perpendicular to the load bearing surface. The profile element longitudinal axis 54a is oriented perpendicular to the lattice mast element longitudinal axis 20. In contrast to the approach according to US 2002/0053550 A1 in which the lattice mast element longitudinal axis 20 is arranged identically in relation to the profile element longitudinal axis 54a, and in which the upper and lower sides formed by the chords are provided with filler bodies, the lattice mast element according to the invention is configured such that the longitudinal elements 21 have filler bodies in the form of null bars 29 and diagonal bars 30, with corner regions between longitudinal elements 21 and transverse elements 22 being braced by bracing elements 24. In a particularly advantageous embodiment of the chord elements 28 for the longitudinal elements 21 according to
Compared to the lattice boom in
At least one lattice mast element 54 is arranged between the adapter lattice mast elements 14, 16. In particular, a plurality of lattice mast elements 54, for instance at least five, at least ten or more than ten lattice mast elements 54, are arranged between the adapter lattice mast elements 14, 16 along the lattice mast longitudinal axis 13.
Compared to the exemplary embodiment shown in
The adapter lattice mast partial elements 57 are each open in a direction towards the other adapter lattice mast partial element 56. The transverse element 22 facing the respective lattice mast element 58 is provided on a side of the adapter lattice mast partial element 57 opposite to the open side. The lattice mast elements 58 are each configured as a simple, open K-assembly. The lattice mast elements 58 have two longitudinal elements 21, a transverse element 22 interconnecting the two longitudinal elements and two bracing elements 24. The bracing elements 24 interconnect the transverse element 22 with in each case one of the longitudinal elements 21. The lattice mast element 58 shown in
The side view of the lattice boom 36 according to
The lattice boom 36 is provided with adapter lattice mast elements 14, 16 adjacent to the lattice mast elements 15. Furthermore, a foot element 12 and a head element 18 as well as additional lattice mast elements 17 having a reduced load bearing surface are provided.
Furthermore, in order to achieve a sufficient load bearing capacity in a plane perpendicular to the drawing plane of
Number | Date | Country | Kind |
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10 2013 205 173.5 | Mar 2013 | DE | national |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2014/055362 | 3/18/2014 | WO | 00 |