Climbing crane and construction method
The climbing crane design addresses the challenge of safely transporting unit masts by allowing them to be transported in an inclined state and erected efficiently, enhancing safety and reducing mechanical complexity.
Patent Information
- Application Number
- JP2021170451
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-10-18
- Publication Date
- 2025-09-30
- Estimated Expiration
- 2041-10-18
AI Technical Summary
Existing climbing cranes face challenges in safely and efficiently transporting unit masts in an upright position, requiring complex moving mechanisms and careful handling to prevent tipping.
A climbing crane design that allows unit masts to be transported in an inclined state using a unit mast retraction mechanism, suspended via a suspension ring, and erected using a rotatable support mechanism that transitions from an inclined to an upright position, simplifying transportation and reducing the risk of tipping.
Enables easy and safe transportation of unit masts, reducing the complexity of the moving mechanism and minimizing the risk of tipping, while optimizing space utilization around the crane.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a climbing crane and a construction method. [Background technology]
[0002] For example, a climbing crane such as that described in Patent Document 1 is used in the construction of buildings. This type of climbing crane can perform construction work at an appropriate height by connecting unit masts longitudinally according to the height of the building under construction. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2011-37610 Summary of the Invention [Problem to be solved by the invention]
[0004] The crane body is supported by a mast made up of multiple unit masts connected longitudinally. As construction work progresses, the crane body is raised. Specifically, the existing mast is raised vertically upward along with the crane body. Next, a new unit mast is brought in from the side in an upright position using a moving platform (see Figure 4 of Patent Document 1) and placed vertically below the existing mast. After that, the existing mast and the brought-in unit mast are connected.
[0005] However, in this method, the unit masts are transported in an upright position, which makes the moving mechanism for the moving platform large and complicated, and also requires careful attention to prevent the unit masts from tipping over. In view of the above circumstances, the present invention provides a climbing crane or the like that can easily and safely transport unit masts when raising the floor of the crane body. [Means for solving the problem]
[0006] According to one aspect of the present invention, there is provided a climbing crane. This climbing crane comprises a crane body, multiple unit masts, a unit mast retraction mechanism, and a unit mast erection mechanism. The multiple unit masts are connected longitudinally to assemble into a mast that supports the crane body, while allowing the height of the crane body to be adjusted. The unit mast retraction mechanism is configured to suspend the unit masts so that they can be transported in an inclined state with respect to the horizontal. The unit mast erection mechanism has a support that supports the transported unit masts. The support is inclined with respect to the horizontal and is rotatable between a first position that receives the unit masts in an inclined state and a second position that places the unit masts in an erected state.
[0007] According to this aspect, when the floor of the crane body is raised, the unit masts can be transported easily and safely. [Brief explanation of the drawings]
[0008] [Figure 1] FIG. 1 is a schematic diagram showing an embodiment of a climbing crane. [Figure 2] FIG. 2 is a schematic diagram showing the configuration of a base mast, a mast lifting mechanism, a unit mast retracting mechanism, and a unit mast erecting mechanism. [Figure 3] FIG. 10 is a schematic diagram showing the process of raising the crane body. [Figure 4] FIG. 10 is a schematic diagram showing the process of raising the crane body. [Figure 5] FIG. 10 is a schematic diagram showing the process of raising the crane body. [Figure 6] FIG. 10 is a schematic diagram showing the process of raising the crane body. [Figure 7] FIG. 2 is a block diagram showing the hardware configuration of a computer. [Figure 8] 1 is a flowchart showing the flow of a construction method. DETAILED DESCRIPTION OF THE INVENTION
[0009] DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS The present invention will be described below with reference to the accompanying drawings. Various features shown in the following embodiments can be combined with each other.
[0010] Incidentally, the program for realizing the software appearing in this embodiment may be provided as a non-transitory computer-readable medium, or may be provided so that it can be downloaded from an external server, or may be provided so that the program is started on an external computer and its functions are realized on a client terminal (so-called cloud computing).
[0011] In this embodiment, the term "unit" may also include, for example, a combination of hardware resources implemented by a circuit in the broad sense and software information processing that can be specifically realized by these hardware resources. In addition, this embodiment handles various types of information, which may be represented by, for example, physical values of signal values representing voltages and currents, high and low signal values as a binary bit set consisting of 0 or 1, or quantum superposition (so-called quantum bits), and communication and calculations may be performed on a circuit in the broad sense.
[0012] In addition, a circuit in the broad sense is a circuit realized by at least appropriately combining a circuit, circuitry, a processor, a memory, etc. That is, it includes an application specific integrated circuit (ASIC), a programmable logic device (e.g., a simple programmable logic device (SPLD), a complex programmable logic device (CPLD), and a field programmable gate array (FPGA)), etc.
[0013] 1. Overall structure 1.1 Basic configuration First, the basic configuration of a climbing crane 1 according to this embodiment will be described. Fig. 1 is a schematic diagram showing an embodiment of a climbing crane. Fig. 2 is a schematic diagram showing the configuration of a base mast, a mast raising / lowering mechanism, a unit mast retraction mechanism, and a unit mast erection mechanism. Fig. 2(a) is a rear view, and Fig. 2(b) is a right side view. Figs. 3 to 6 are schematic diagrams showing the process of raising the crane body. In the following description, the vertically upper side will be simply referred to as "upper side" or "upper side," and the vertically lower side will be simply referred to as "lower side" or "lower side."
[0014] Climbing crane 1 climbs by its own mechanism as the height of a building increases. As shown in Figure 1, climbing crane 1 comprises a mast 2, a crane body 3, a base mast 4, and a base frame 5. In other words, climbing crane 1 has mast 2 and base mast 4 on top of base frame 5, with crane body 3 installed on top of the base frame 5.
[0015] (Mast 2) The mast 2 is configured to support the crane body 3. The mast 2 is assembled by connecting a plurality of unit masts 21 in the longitudinal direction. In particular, in the climbing crane 1, the mast 2 is configured so that the height of the crane body 3 can be adjusted to match the height of the building being constructed by changing the number of unit masts 21 to be connected. As shown in the drawings, each unit mast 21 has a rectangular cylindrical shape. A plurality of (four in the illustrated configuration) elliptical through-holes 211 are provided on each of the four side surfaces of the unit mast 21 along the longitudinal direction.
[0016] (Crane body 3) The crane body 3 comprises a rotating body 31, a jib 32, a hoisting winch 33, a hoisting rope 34, and a hook 35. The rotating body 31 is rotatably supported by a slewing bearing (not shown) provided at the top of the mast 2. The jib 32 is supported by the rotating body 31, extends forward and backward, and is configured to be able to rise and fall. The hoisting winch 33 is fixed to the rotating body 31 and is configured to be able to hoist or lower the hoisting rope 34. A hook 35 is provided at the end of the hoisting rope 34.
[0017] (Base mast 4 and base frame 5) The base mast 4 supports the lower portion of the mast 2, and is firmly fixed to the base frame 5 using anchor bolts (not shown) or the like. As shown in FIG. 2, the base mast 4 is configured as a rectangular parallelepiped frame body by four support columns 41 extending in the vertical direction (height direction) and a plurality of beams 42 connecting the support columns 41 to each other. A storage space 40 capable of accommodating the lower portion of the mast 2 and the unit masts 21 is formed inside the base mast 4. The storage space 40 is also provided with a plurality of rollers that allow the mast 2 to move vertically but restrict its movement in the horizontal direction.
[0018] As shown in Figure 2(a), the multiple rollers include two pairs of first rollers 65a, 65b arranged above the base mast 4 between the mast 2, and two pairs of second rollers 66a, 66b arranged below the base mast 4 between the mast 2 and the pair of first rollers 65a, 65b. The rollers also include two pairs of third rollers 67a, 67b arranged above the base mast 4 between the base mast 4 and the mast 2, as shown in Figure 2(b), and two pairs of fourth rollers 68a, 68b arranged below the base mast 4 between the base mast 4 and the mast 2.
[0019] The climbing crane 1 further includes a mast raising / lowering mechanism 6, a unit mast retracting mechanism 7, and a unit mast erecting mechanism 8. As shown in FIG. 2( b ), the mast lifting mechanism 6 includes a rope winch 61 , a wire rope 62 , a sheave 63 , and a fixing part 64 . The rope winch 61 is fixed onto the base frame 5. The base end side (one end side) of a wire rope 62 is wound around the rope winch 61.
[0020] The sheave 63 is rotatably provided on the upper side of the base mast 4. After being wound around the sheave 63, the wire rope 62 is pulled into the storage space 40, and its tip (other end) is fixed to the lower end of the mast 2 (the lowest unit mast 21) via the fixing part 64. In this embodiment, when the climbing crane 1 is viewed from behind, as shown in Figure 2(a), the fixing part 64 is offset to the left (one side) of the vertical center line O. In this case, when the mast lifting mechanism 6 attempts to lift the mast 2 upward, the mast 2 tends to tilt to the right in Figure 2(a).
[0021] Therefore, in this embodiment, the diameter of the first roller 65b located on the right side (the other side) of the pair of first rollers 65a, 65b is designed to be larger than the diameter of the first roller 65a located on the left side (one side), and the diameter of the second roller 66a located on the left side (one side) of the pair of second rollers 66a, 66b is designed to be larger than the diameter of the second roller 66b located on the right side (the other side). With this configuration, when the mast lifting mechanism 6 is used to lift the mast 2 upward, the mast 2 can be easily lifted straight in the vertical direction.
[0022] In this embodiment, when the climbing crane 1 is viewed from the side, as shown in Figure 2(b), the fixing part 64 is fixed to the rear side (left side in the figure) of the mast 2. In this case, when the mast lifting mechanism 6 tries to lift the mast 2 upward, the mast 2 tends to tilt to the front side (right side in the figure).
[0023] Therefore, in this embodiment, the diameter of the third roller 67b located on the front side (opposite the fixed portion 64) of the pair of third rollers 67a, 67b is designed to be larger than the diameter of the third roller 67a located on the rear side (same side as the fixed portion 64), and the diameter of the fourth roller 68a located on the rear side (same side as the fixed portion 64) of the pair of fourth rollers 68a, 68b is designed to be larger than the diameter of the fourth roller 68b located on the front side (opposite the fixed portion 64). With this configuration, when the mast lifting mechanism 6 is used to lift the mast 2 upward, the mast 2 can be easily lifted straight in the vertical direction.
[0024] The unit mast retraction mechanism 7 is composed of a hoist and has a hoisting device 71 and a traversing device 72. The hoisting device 71 includes a drum (not shown) that rotates when a motor is activated, a wire rope 711 that is wound around the drum, and a hook 712 that is attached to the tip of the wire rope 711. An attachment part 212 is provided in the middle of the unit mast 21 in the longitudinal direction, and a suspension ring R is attached to the attachment part 212 by screwing, hooking, insertion, etc. When transporting the unit mast 21, the unit mast 21 can be suspended by hooking a hook 712 to the suspension ring R and winding up the wire rope 711 with the hoisting device 71.
[0025] The traverse device 72 includes a traverse rail 721 and a drive unit 722 that moves the hoisting device 71 along the traverse rail 721. This allows the unit masts 21 suspended by the hoisting device 71 to move closer to and away from the base mast 4. According to this unit mast retraction mechanism 7, the unit mast 21 is suspended via only one suspension ring R midway in the longitudinal direction, so that the unit mast 21 is naturally tilted relative to the horizontal direction and can be transported in this state.
[0026] 3, the longitudinal position at which the hanging ring R is attached (the position of the attachment portion 212) is preferably offset from the center of gravity CG of the unit mast 21. Specifically, the attachment portion 212 is preferably positioned on the opposite side of the center of gravity CG of the unit mast 21 from the end portion 213 of the unit mast 21, which should be downward during transportation. In this case, when the unit mast 21 is suspended, the suspension ring R and the center of gravity CG of the unit mast 21 are balanced in a position positioned on a straight line along the vertical direction, and as a result, the unit mast 21 can be tilted easily and reliably.
[0027] The tilt angle θ1 of the unit mast 21 changes depending on the relationship between the position of the center of gravity CG of the unit mast 21 and the position where the suspension ring R is attached. Instead of such a configuration, the unit mast 21 may be suspended via a plurality of suspension rings R of different lengths, so as to be inclined relative to the horizontal direction. Furthermore, when loading the unit mast 21 onto the bed of a truck, one or more additional suspension rings R may be used to keep the unit mast 21 parallel to the horizontal direction.
[0028] The unit mast erection mechanism 8 has a flat support member 81 that supports the unit mast 21 , and a drive device 82 that rotates the support member 81 . The support 81 is rotatably attached to the base mast 4 . The drive device 82 is configured, for example, by a hydraulic cylinder or the like, and is configured to be rotatable between a first position (see Figures 2 to 5) in which it receives the unit mast 21 transported by the unit mast retraction mechanism 7, and a second position (see Figure 6) in which it places the unit mast 21 in an upright position. The support body 81 is inclined relative to the horizontal direction at the first position, and can receive the unit mast 21 in an inclined state.
[0029] With this configuration, the thrust of the drive unit 82 can be significantly reduced compared to a configuration in which the unit mast 21 is received in a state where it is tilted until it is parallel to the horizontal direction and then rotated approximately 90° to an upright state. Furthermore, since the support body 81 is not tilted until it is parallel to the horizontal direction, the space that needs to be secured around the climbing crane 1 (base frame 5) can be reduced. Here, an engagement portion 811 is provided above the support body 81. This engagement portion 811 abuts (engages) with the upper portion of one of the through holes 211 when the support body 81 receives the unit mast 21. This positions the unit mast 21 relative to the support body 81.
[0030] The tilt angle θ2 of the support body 81 in the first position is preferably set so that the unit mast 21 can slide along the support body 81 under its own weight while in contact with the support body 81. This allows the operation of setting the unit mast 21 on the support body 81 to be carried out smoothly. The contact surface of the support body 81 with the unit mast 21 may be provided with a treatment or structure to improve sliding properties.
[0031] Furthermore, it is preferable that the tilt angle θ2 of the support body 81 at the first position is set to be larger than the tilt angle θ1 of the unit mast 21 during transportation. This makes it easier to set the unit mast 21 on the support body 81 while preventing the unit mast 21 from interfering with the base mast 4 (support body 81). The preferable value of the inclination angle θ2 of the support 81 at the first position also changes depending on the sliding resistance (friction resistance) of the unit mast 21 with respect to the contact surface of the support 81.
[0032] The tilt angle θ2 of the support 81 in the first position is not particularly limited, but is preferably 50 to 80°, and more preferably 60 to 70°. Specifically, the tilt angle θ2 may be, for example, 50, 51, 52, 53, 54, 55, 56, 57, 58, 59, 60, 61, 62, 63, 64, 65, 66, 67, 68, 69, 70, 71, 72, 73, 74, 75, 76, 77, 78, 79, or 80°, or may be within a range between any two of the values exemplified here. In this case, the unit masts 21 can be easily and reliably set on the support 81 without providing any additional processing or structure to the support 81.
[0033] 1.2 Computers for managing construction work 9 Next, the computer 9 will be described. FIG. 7 is a block diagram showing the hardware configuration of a computer.
[0034] In this embodiment, as shown in FIGS. 2 to 6, the computer 9 is used when the crane body 3 is raised by adding unit masts 21. The computer 9 is mounted on, for example, the climbing crane 1 and is configured to manage the progress and process of construction. The computer 9 is, for example, a dedicated control device, and as shown in Fig. 7, has a communication unit 91, a storage unit 92, and a control unit 93, and these components are electrically connected via a communication bus 90. Each component will be further described below.
[0035] The communication unit 91 is configured to be able to transmit various electrical signals from the computer 9 to external components. The communication unit 91 is also configured to be able to receive various electrical signals from external components to the computer 9. More preferably, the communication unit 91 has a network communication function, which allows it to communicate various information with external devices via a network such as the Internet. For example, the communication unit 91 may obtain data regarding the current altitude from a sensor (not shown) provided in a part of the climbing crane 1.
[0036] The memory unit 92 stores various information defined above. This can be implemented, for example, as a storage device such as a solid state drive (SSD) that stores various programs related to the climbing crane 1 executed by the control unit 93, or as a memory such as a random access memory (RAM) that stores temporarily required information (arguments, arrays, etc.) related to program calculations. The memory unit 92 stores various programs and variables related to the climbing crane 1 executed by the control unit 93. It is particularly preferable that information related to construction plans to be carried out using the climbing crane 1 be stored.
[0037] The control unit 93 is, for example, a central processing unit (CPU) not shown. The control unit 93 realizes various functions related to the climbing crane 1 by reading out predetermined programs stored in the memory unit 92. In other words, information processing by the software stored in the memory unit 92 is specifically realized by the control unit 93, which is an example of hardware. Note that the control unit 93 is not limited to being a single unit, and it may be implemented with multiple control units 93 for each function. It may also be a combination of these.
[0038] In this embodiment, the control unit 93 manages the progress of the construction work based on a dedicated program previously stored in the storage unit 92. The control unit 93 can also estimate the required height of the mast 2 based on information about the current altitude acquired by the communication unit 91 and information about the construction plan stored in the storage unit 92.
[0039] 2. Construction method using climbing crane 1 Next, a construction method (raising the floor of the crane body 3) using the above-mentioned climbing crane 1 will be described. Fig. 8 is a flowchart showing the flow of the construction method. Below, an explanation will be given along with each step shown in Fig. 8.
[0040] Construction work on a building under construction is carried out using a climbing crane 1 (step S001). As the construction progresses, the building becomes taller, and masts 2 must be added accordingly. Therefore, the required height of the masts 2 is estimated appropriately using a computer 9 (step S002). At this time, it is checked whether the height of the mast 2 exceeds the reference value (step S003), and if it does not, the mast 2 is extended to reach the estimated height, and construction continues.
[0041] 2.1 Mast raising process First, as shown in FIG. 2(b), the mast 2 supporting the crane body 3 is moved upward together with the lane body 3 by the mast lifting mechanism 6 (step S004). At this time, a hanging ring R is attached to the mounting portion 212 of the unit mast 21, and the hook 712 of the hoisting device 71 is hooked onto this hanging ring R.
[0042] 2.2 Unit mast retraction process Next, as shown in Fig. 3, the wire rope 711 of the hoisting device 71 is hoisted (step S005). At this time, the unit mast 21 is suspended midway in the longitudinal direction via only one suspension ring R, so that it can be tilted relative to the horizontal direction. Next, as shown in FIG. 4, the unit mast 21 suspended in an inclined state is transported by the traversing device 72 toward the base mast 4 (step S006).
[0043] 2.3 Unit mast erection process Prior to the unit mast erection step, the drive device 82 is operated to fix the support 81 that supports the unit mast 21 at a first position inclined relative to the horizontal direction, as shown in FIGS. 5, the wire rope 711 of the hoisting device 71 is wound down (step S007), causing the unit mast 21 to come into contact with the support body 81 and slide along the support body 81 due to its own weight. As a result, the support body 81 receives the unit mast 21 in an inclined state.
[0044] At this time, the engaging portion 811 engages with the edge of the through-hole 211 of the unit mast 21 , and the unit mast 21 is supported and fixed to the support body 81 . 6, the drive device 82 is operated to rotate the support body 81 to a second position along the vertical direction (step S008). As a result, the unit mast 21 is accommodated and arranged in the accommodation space 40 in an upright state below the mast 2.
[0045] 2.4 Unit mast connection process Next, the lower end of the mast 2 and the upper end of the unit mast 21 are connected with, for example, bolts (not shown) (step S009). This extends the length of the mast 2, allowing the crane body 3 to have a higher floor. Thereafter, construction work is carried out on the building under construction using the climbing crane 1 (step S010). On the other hand, when lowering the crane body 3, the above-described steps can be reversed to disassemble the mast 2 into the unit masts 21 one by one.
[0046] 3.Other The climbing crane 1 according to this embodiment may be implemented in the following manner.
[0047] (1) In this embodiment, the mast lifting mechanism 6 is configured as a wire rope type equipped with a wire rope 62, but is not limited to this and may be configured as a cylinder type, a jack type, or a combination of these.
[0048] (2) In this embodiment, the unit mast retraction mechanism 7 is configured as a hoist, but is not limited to this and may be the crane body 3. Specifically, the unit mast 21 is hooked and transported by the hook 712 of the unit mast retraction mechanism 7, but the unit mast 21 may also be hooked and transported by the hook 35 of the crane body 3.
[0049] (3) In this embodiment, the computer 9 determines whether or not to raise the floor of the crane body 3. However, such determination and decision may be made manually by the user.
[0050] (4) Furthermore, it may be provided in the following forms. In the climbing crane, the tilt angle of the support in the first position is set so that the unit mast can slide along the support under its own weight while the unit mast is in contact with the support. In the climbing crane, the tilt angle of the support body at the first position is set to be larger than the tilt angle of the unit mast during transportation. In the climbing crane, the tilt angle of the support in the first position is 50 to 80 degrees. In the climbing crane, the unit mast retraction mechanism suspends the unit mast via only one suspension ring midway in the longitudinal direction. In the climbing crane, the longitudinal position at which the suspension ring is attached is offset from the center of gravity of the unit mast. The climbing crane further includes a base mast, the base mast being configured to be able to accommodate the unit masts, and the support body of the unit mast erection mechanism being rotatably attached to the base mast. The climbing crane further includes a mast raising and lowering mechanism, the mast raising and lowering mechanism having a rope winch and a plurality of rollers, the tip of the rope of the rope winch being fixed to the mast via a fixing part at a position offset to one side from the center line along the vertical direction when the climbing crane is viewed from behind, the plurality of rollers including a pair of first rollers arranged between the mast and the first roller, and a pair of second rollers arranged between the mast and the first roller and vertically below the base mast of the pair of first rollers, the diameter of the first roller located on the other side of the pair of first rollers being larger than the diameter of the first roller located on one side of the pair of second rollers, and the diameter of the second roller located on one side of the pair of second rollers being larger than the diameter of the second roller located on the other side. In the climbing crane, the rollers include a pair of third rollers arranged between the mast and the base mast, and a pair of fourth rollers arranged between the mast and the base mast vertically below the pair of third rollers, wherein the diameter of the third roller located on the opposite side of the fixed portion of the pair of third rollers is larger than the diameter of the third roller located on the same side as the fixed portion of the pair of fourth rollers, and the diameter of the fourth roller located on the same side as the fixed portion of the pair of fourth rollers is larger than the diameter of the fourth roller located on the opposite side of the fixed portion. A construction method using a climbing crane, comprising the following steps: in a mast raising step, a mast supporting the crane body is moved vertically upward together with the crane body; in a unit mast retracting step, the unit mast is suspended so as to be transported in an inclined state relative to the horizontal; in a unit mast erecting step, a support body supporting the unit mast is fixed to a first position inclined relative to the horizontal, and after receiving the unit mast in an inclined state, is rotated to a second position where the unit mast is in an erect state, and the unit mast in an erect state is positioned vertically below the mast; and in a unit mast connecting step, the mast and the unit mast are connected. Of course, this is not the case.
[0051] Finally, while various embodiments of the present invention have been described, these are presented by way of example only and are not intended to limit the scope of the invention. The novel embodiments may be embodied in various other forms, and various omissions, substitutions, and modifications may be made without departing from the spirit of the invention. Such embodiments and modifications are intended to be included within the scope and spirit of the invention, as well as within the scope of the inventions and their equivalents as defined in the accompanying claims. [Explanation of symbols]
[0052] 1: Climbing crane 2: Mast 21: Unit mast 211: Through hole 212: Mounting part 213: End 3: Crane body 4: Base mast 5: Base frame 6: Mast lifting mechanism 7: Unit mast retraction mechanism 71:Hoisting device 72: Traverse device 8: Unit mast erection mechanism 81 :Support 811: Engagement part 82: Drive unit CG: Center of gravity O: Center line R: Hanging ring θ1: Inclination angle θ2: Inclination angle
Claims
1. A climbing crane, The crane comprises a crane body, a plurality of unit masts, a unit mast retraction mechanism, and a unit mast erection mechanism, The plurality of unit masts are connected in the longitudinal direction to form a mast supporting the crane body, and are configured to be able to adjust the height of the crane body, the unit mast retraction mechanism is configured to suspend the unit mast so that the unit mast can be transported in a state inclined with respect to the horizontal direction, the unit mast erection mechanism has a support that supports the transported unit mast, The support body is inclined relative to the horizontal direction and is rotatable between a first position where the support body receives the unit mast in an inclined state and a second position where the unit mast is in an upright state.
2. The climbing crane according to claim 1, The inclination angle of the support body at the first position is set so that the unit mast can slide along the support body under its own weight when the unit mast is in contact with the support body.
3. The climbing crane according to claim 1 or 2, The tilt angle of the support body at the first position is set to be larger than the tilt angle of the unit mast during transportation.
4. The climbing crane according to any one of claims 1 to 3, The tilt angle of the support in the first position is 50 to 80 degrees.
5. The climbing crane according to any one of claims 1 to 4, The unit mast retraction mechanism suspends the unit mast via only one suspension ring midway in the longitudinal direction.
6. The climbing crane according to claim 5, The longitudinal position at which the hanging ring is attached is offset from the center of gravity of the unit mast.
7. The climbing crane according to any one of claims 1 to 6, Furthermore, it is equipped with a base mast, the base mast is configured to be able to accommodate the unit masts, The support of the unit mast erecting mechanism is rotatably attached to the base mast.
8. 8. The climbing crane according to claim 7, Furthermore, it is equipped with a mast lifting mechanism, The mast lifting mechanism includes a rope winch and a plurality of rollers, The tip of the rope of the rope winch is fixed to the mast via a fixing part at a position shifted to one side from the center line along the vertical direction when the climbing crane is viewed from behind, the plurality of rollers include a pair of first rollers arranged between the base mast and the mast, and a pair of second rollers arranged between the base mast and the mast vertically below the pair of first rollers, The diameter of the first roller located on the other side of the pair of first rollers is larger than the diameter of the first roller located on one side, and the diameter of the second roller located on one side of the pair of second rollers is larger than the diameter of the second roller located on the other side.
9. 9. The climbing crane according to claim 8, the plurality of rollers include a pair of third rollers arranged between the base mast and the mast, and a pair of fourth rollers arranged between the base mast and the mast vertically below the pair of third rollers, The diameter of the third roller of the pair of rollers located on the opposite side of the fixed portion is larger than the diameter of the third roller located on the same side as the fixed portion, and the diameter of the fourth roller of the pair of rollers located on the same side as the fixed portion is larger than the diameter of the fourth roller located on the opposite side of the fixed portion.
Citation Information
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