Supporting device of tower drum
By designing the base structure, shock-absorbing structure, and support structure of the tower support device, and utilizing shock-absorbing components to absorb and buffer vibrations, the problem of vibration and impact during tower transportation was solved, thereby reducing tower damage.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-12-29
- Publication Date
- 2026-03-31
AI Technical Summary
The tower was subjected to significant vibration and impact during transportation, which led to damage to the wind turbine tower.
Design a tower support device, including a base structure, a shock-absorbing structure and a support structure, which absorbs and buffers vibration impacts through shock-absorbing components, reducing the vibration transmitted to the support structure and the tower.
It effectively reduces the vibration and impact on the tower during transportation, protecting the tower from damage.
Smart Images

Figure CN121757484A_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of support device technology, and in particular to a support device for a tower. Background Technology
[0002] With the continued growth in demand for renewable energy, the offshore wind power industry is expanding rapidly, and the capacity of individual wind turbines and the size of towers are also increasing. During transportation and storage, the towers need to be supported by tower brackets.
[0003] In the prior art, the tower support includes a base, a bracket, and support legs. The bottom of the base is connected to the support legs to achieve overall stability, and a bracket is provided on each of the left and right sides of the base to support the tower.
[0004] However, the wind turbine towers can be damaged by vibration and impact during transportation. Summary of the Invention
[0005] This application provides a support device for wind turbine towers to solve the problem of wind turbine towers being damaged by large vibrations and impacts during transportation.
[0006] On one hand, this application provides a support device for a tower, comprising:
[0007] Base structure;
[0008] A shock-absorbing structure, comprising a shock-absorbing component and a first connecting component, wherein the first connecting component is connected to the base structure and the shock-absorbing component is disposed on the first connecting component;
[0009] A support structure includes a shell and a support member disposed on the shell. The support member is arc-shaped and is used to support the tower. A shock absorber is hinged to the shell and is configured to absorb vibrations transmitted to the support member via the base structure.
[0010] In one possible implementation, the tower support device provided in this application includes a leaf spring with a bent portion facing the support, the leaf spring having two lugs, both of which are hinged to the housing.
[0011] In one possible implementation, the tower support device provided in this application further includes at least two second connecting members, the shock-absorbing members being hinged to the shell via the second connecting members.
[0012] In one possible implementation, the tower support device provided in this application has at least two of the first connector and the shock absorber. The first connector is laid on the base structure, and the shock absorber is connected to the first connector.
[0013] In one possible implementation, the tower support device provided in this application further includes at least two driving members. The driving members are disposed on the housing, and the driving end of the driving member is connected to the support member. The support member is an elastic support plate, and the driving member is used to drive the elastic support plate to move toward the tower so that the elastic support plate abuts against the outer wall of the tower.
[0014] In one possible implementation, the tower support device provided in this application further includes a shock-absorbing pad, which is disposed on the side of the support member facing away from the shock-absorbing member, and is used to abut against the outer wall of the tower.
[0015] In one possible implementation, the tower support device provided in this application further includes at least two detection elements. The detection elements are disposed on the side of the support member away from the shock absorber and are adjacent to the end of the support member. The detection elements are used to detect the pressure on the support member. The driving element is used to drive the support member to move toward the tower when the pressure of the detection element is less than or equal to a preset value.
[0016] In one possible implementation, the tower support device provided in this application includes a housing comprising two support plates and two connecting plates, the support plates and the connecting plates being sequentially connected and together forming a first receiving groove, the driving member being hinged to the connecting plate, the shock absorber being hinged to the support plate, and a portion of the driving member and a portion of the shock absorber being located within the first receiving groove.
[0017] In one possible implementation, the support device for the tower provided in this application has a support plate with an arc-shaped side facing the support member.
[0018] In one possible implementation, the tower support device provided in this application includes a base structure comprising a housing and at least two support legs, the height of which is adjustable, the support legs being connected to the housing, the housing having a second receiving groove, and the shock absorber, the first connector, and a portion of the housing being located within the second receiving groove.
[0019] This application provides a tower support device, which comprises a base structure, a vibration damping structure, and a support structure. The base structure is connected to the vibration damping structure, and the support structure is hinged to the vibration damping structure. The support structure supports the tower. The vibration damping structure includes a damping element and a first connecting element. The first connecting element is connected to the base structure and has the damping element mounted on it. The support structure includes a shell and a support element mounted on the shell. The support element is arc-shaped and supports the tower. The damping element is hinged to the shell. During tower transportation, external vibration impacts are transmitted through the base structure to the first connecting element, and then from the first connecting element to the damping element. The damping element, through its own movement, buffers and absorbs the vibration impact before transmitting it to the support structure, thus reducing the vibration impact on the support structure and consequently reducing the vibration impact on the tower, thereby achieving vibration damping. Attached Figure Description
[0020] The accompanying drawings, which are incorporated in and form part of this specification, illustrate embodiments consistent with this application and, together with the description, serve to explain the principles of this application.
[0021] Figure 1 A schematic diagram of the structure of the support device for the tower provided in the embodiments of this application;
[0022] Figure 2 for Figure 1 A schematic diagram of a half-section structure;
[0023] Figure 3 for Figure 2 A schematic diagram of the vibration damping structure in the diagram;
[0024] Figure 4 for Figure 1 A schematic diagram of the supporting structure in the diagram;
[0025] Figure 5 for Figure 4 A schematic diagram of the supporting components.
[0026] Explanation of reference numerals in the attached figures:
[0027] 100-Base structure;
[0028] 110 - Outer shell; 111 - Second receiving slot; 120 - Support leg;
[0029] 200 - Vibration damping structure;
[0030] 210 - Shock absorber; 211 - Leaf spring; 2111 - Coil lug;
[0031] 220 - First connector; 230 - Second connector;
[0032] 300 - Supporting structure;
[0033] 310 - Housing; 311 - Support plate; 312 - Connecting plate; 313 - First receiving groove;
[0034] 320 - Support component;
[0035] 330 - Driver component; 331 - Driver end;
[0036] 340 - Shock-absorbing pad; 350 - Inspection piece.
[0037] The accompanying drawings illustrate specific embodiments of this application, which will be described in more detail below. These drawings and descriptions are not intended to limit the scope of the concept in any way, but rather to illustrate the concept of this application to those skilled in the art through reference to particular embodiments. Detailed Implementation
[0038] To make the objectives, technical solutions, and advantages of this application clearer, the technical solutions of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application.
[0039] In the embodiments of this application, the terms "upper," "lower," "inner," "middle," "outer," "front," and "rear," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. These terms are primarily for better description of this application and its embodiments, and are not intended to limit the indicated device, element, or component to having a specific orientation, or to be constructed and operated in a specific orientation. Furthermore, some of the above terms may be used to indicate other meanings besides orientation or positional relationship; for example, the term "upper" may also be used in some cases to indicate a certain dependency or connection relationship. Those skilled in the art can understand the specific meaning of these terms in the embodiments of this application according to the specific circumstances.
[0040] Furthermore, the terms "set up," "connect," and "fix" should be interpreted broadly. For example, "connection" can be a fixed connection, a detachable connection, or an integral structure; it can be a mechanical connection or an electrical connection; it can be a direct connection or an indirect connection through an intermediate medium, or it can be an internal connection between two devices, components, or parts. Those skilled in the art can understand the specific meaning of the above terms in the embodiments of this disclosure according to the specific circumstances.
[0041] The terms “first,” “second,” “third,” “fourth,” etc. (if present) in the specification, claims, and accompanying drawings of this application are used to distinguish similar objects and are not necessarily used to describe a particular order or sequence. It should be understood that such data can be interchanged where appropriate so that the embodiments of this application described herein can be implemented, for example, in a sequence other than those illustrated or described herein.
[0042] In this application, the terms "exemplary" or "for example" are used to indicate examples, illustrations, or descriptions. Any embodiment or design described as "exemplary" or "for example" in this application should not be construed as being more preferred or advantageous than other embodiments or designs. Specifically, the use of terms such as "exemplary" or "for example" is intended to present the relevant concepts in a specific manner.
[0043] Unless otherwise stated, the term "multiple" means two or more.
[0044] With the continued growth in demand for renewable energy, the offshore wind power industry is expanding rapidly, and the capacity of individual wind turbines and the size of towers are also increasing. During transportation and storage, the towers need to be supported by tower brackets.
[0045] In existing technology, a tower support includes a base, a bracket, and support legs. The bottom of the base is connected to the support legs to achieve overall stability. A bracket is installed on each of the left and right sides of the base to support the tower. External vibrations are transmitted from the support legs to the base, then from the base to the bracket, and finally act on the tower. The tower is subjected to significant vibration and impact during transportation, which can cause damage to the wind turbine tower.
[0046] This application provides a tower support device, which comprises a base structure, a shock-absorbing structure, and a support structure. The base structure is connected to the shock-absorbing structure, and the support structure is hinged to the shock-absorbing structure. The shock-absorbing structure includes a shock-absorbing component and a first connecting component. The first connecting component is connected to the base structure and has the shock-absorbing component mounted on it. The support structure includes a shell and a support component mounted on the shell. The support component is arc-shaped and used to support the tower. The shock-absorbing component is hinged to the shell. During tower transportation, external vibrations are transmitted through the base structure to the first connecting component, and then from the first connecting component to the shock-absorbing component. The shock-absorbing component, through its own movement, buffers and absorbs the vibrations before transmitting them to the support structure, thus reducing the vibrations experienced by the support structure and consequently reducing the vibrations experienced by the tower on the support structure, thereby achieving the purpose of shock absorption.
[0047] The embodiments of this application are described below with reference to the accompanying drawings.
[0048] Reference Figures 1 to 5The tower support device provided in this embodiment includes: a base structure 100; a shock-absorbing structure 200, the shock-absorbing structure 200 including a shock-absorbing component 210 and a first connecting component 220, the first connecting component 220 being connected to the base structure 100, and the shock-absorbing component 210 being disposed on the first connecting component 220.
[0049] The support structure 300 includes a housing 310 and a support member 320 disposed on the housing 310. The support member 320 is arc-shaped and is used to support the tower. The shock absorber 210 is hinged to the housing 310 and is configured to absorb vibrations transmitted to the support member 320 via the base structure 100.
[0050] This embodiment provides a support structure for a tower, used to support the tower during storage and transportation. This embodiment also includes a shock-absorbing structure 200, in which the shock-absorbing component 210 absorbs the vibration transmitted from the base structure 100 to the support component 320, thereby reducing the vibration experienced by the tower on the support structure 300.
[0051] In this embodiment, the base structure 100 is used to support the support structure 300 and to house the shock-absorbing structure 200. In a specific implementation, the base structure 100 can be a hollow structure made of metal, which reduces the weight of this embodiment while ensuring the support strength of the base structure 100 for the support structure 300.
[0052] The damping structure 200 includes a damping element 210 and a first connecting element 220. The damping element 210 can be made of a material with high elasticity and high fatigue strength. In specific implementation, the damping element 210 can be made of alloy spring steel to meet the requirements of the damping element 210 to absorb vibration. The first connecting element 220 is used to bear all the weight of the damping element 210 and can be made of a material that is impact-resistant and suitable for complex stress.
[0053] In this embodiment, the first connector 220 is connected to the base structure 100, and the shock absorber 210 is disposed on the first connector 220. During the transportation and storage of the tower, the first connector 220 transmits the vibration impact from the base structure 100 to the shock absorber 210. The shock absorber 210 absorbs the vibration impact through its own deformation or movement, thereby achieving the purpose of reducing the vibration impact.
[0054] The support structure 300 provided in this embodiment includes a shell 310 and a support member 320. The shell 310 bears the entire weight of the support member 320 and can be an arched hollow structure to reduce weight while meeting the support strength requirements for the support member 320. The support member 320 is arc-shaped and is used to support the tower. The support member 320 can be made of high-elasticity alloy steel and fits the outer wall of the tower.
[0055] In practice, the support member 320 is mounted on the shell 310, and the shell 310 is hinged to the damper 210. External vibration impact is transmitted to the damper 210, and after the damper 210 absorbs the vibration impact through its own deformation or movement, it is transmitted to the support structure 300. The vibration impact on the support structure 300 is less than that on the external vibration impact. Therefore, the vibration impact on the tower on the support structure 300 is less than that on the external vibration impact, thus achieving the purpose of vibration reduction.
[0056] This embodiment provides a tower support structure, which includes a base structure 100, a shock-absorbing structure 200, and a support structure 300. The base structure 100 is connected to the shock-absorbing structure 200, and the support structure 300 is hinged to the shock-absorbing structure 200. The support structure 300 is used to support the tower. The shock-absorbing structure 200 includes a shock-absorbing element 210 and a first connecting element 220. The first connecting element 220 is connected to the base structure 100 and the shock-absorbing element 210 is disposed on the first connecting element 220. The support structure 300 includes a shell 310 and a support element 320 disposed on the shell 310. The support element 320 is arc-shaped and is used to support the tower. The shock-absorbing element 210 is hinged to the shell 310. During tower transportation, external vibration and impact are transmitted through the base structure 100 to the first connector 220, and then from the first connector 220 to the shock absorber 210. The shock absorber 210, through its own deformation or movement, buffers and absorbs the vibration and impact before transmitting it to the shell 310, and then from the shell 310 to the support member 320, and finally acts on the tower on the support member 320. The vibration and impact on the support structure 300 are reduced by the absorption and buffering of the shock absorber 210, thereby reducing the vibration and impact on the tower on the support structure 300, thus achieving the purpose of vibration reduction.
[0057] Reference Figure 2 and Figure 3 As shown, in some embodiments, the damping member 210 includes a leaf spring 211 with a bent portion facing the support member 320. The leaf spring 211 has two lugs 2111, both of which are hinged to the housing 310.
[0058] In this embodiment, the damping component 210 uses a leaf spring 211 for damping. The leaf spring 211 can be composed of multiple spring steel sheets of decreasing length, which are stacked together to bear and transmit loads by utilizing the elastic deformation of the material. The bent part of the leaf spring 211 faces the support member 320, that is, the length of the spring steel sheet decreases from the support member 320 towards the base structure 100. The leaf spring 211 has a simple structure, high rigidity, and is not prone to failure under heavy loads.
[0059] Meanwhile, the leaf spring 211 has two coiled ears 2111, which can be in the shape of a ring. The two coiled ears 2111 are hinged to the housing 310, which fixes the leaf spring 211 to the housing 310. At the same time, the leaf spring 211 can also move relative to the housing 310, which satisfies the characteristic of the leaf spring 211 to absorb vibration through its own deformation or movement. At the same time, the hinged connection between the coiled ears 2111 and the housing 310 makes installation and disassembly convenient and maintenance easy.
[0060] Reference Figure 2 and Figure 3 As shown, in some embodiments, the damping structure 200 further includes at least two second connectors 230, and the damping member 210 is hinged to the housing 310 through the second connectors 230.
[0061] In its specific implementation, to hinge the damping member 210 to the housing 310, the damping structure 200 further includes at least two second connecting members 230, each second connecting member 230 correspondingly connected to a lug 2111. The second connecting member 230 is fixedly connected to the housing 310. A mounting through hole can be provided on the second connecting member 230, through which the lug 2111 passes. The inner diameter of the mounting through hole is slightly larger than the outer diameter of the lug 2111, allowing the lug 2111 to rotate within the mounting through hole, thus achieving the hinge between the damping member 210 and the housing 310, and enabling the damping member 210 to move relative to the housing 310.
[0062] Reference Figure 2 and Figure 3 As shown, in some embodiments, at least two first connectors 220 and shock absorbers 210 are provided. The first connectors 220 are laid on the base structure 100, and the shock absorbers 210 are connected to the first connectors 220 respectively.
[0063] In this embodiment, at least two of the first connecting member 220 and the shock absorber 210 are provided, and at least two shock absorbers 210 are arranged sequentially in the width direction. The first connecting member 220 can be a bolster beam. In order to ensure that the first connecting member 220 is subjected to uniform force and transmits force stably, the first connecting member 220 is laid on the base structure 100, and the shock absorber 210 is correspondingly connected to the first connecting member 220.
[0064] In a specific implementation, at least two first connectors 220 are arranged sequentially in the width direction, and each first connector 220 is laid on the base structure 100. The shock absorber 210 is correspondingly arranged on each first connector 220, which ensures that the vibration impact transmitted from the base structure 100 to the first connector 220 can be evenly transmitted to the shock absorber 210, so that the deformation or movement of each shock absorber 210 is consistent, thereby achieving shock absorption for the support structure 300.
[0065] Reference Figure 1 , Figure 2 and Figure 4 In some embodiments, the support structure 300 further includes at least two driving members 330, which are disposed on the housing 310. The driving end 331 of the driving member 330 is connected to the support member 320, which is an elastic support plate. The driving member 330 is used to drive the elastic support plate 320 to move toward the tower so that the elastic support plate 320 abuts against the outer wall of the tower.
[0066] In order for the arc-shaped support member 320 to fit against the outer wall of the tower, the support member 320 can be an elastic support plate. The elastic support plate 320 fits against the outer wall of towers of different sizes by its own deformation, so that the support structure of the tower provided in this embodiment can be used for the storage and transportation of towers of different sizes.
[0067] In practical implementation, the elastic support plate 320 requires external power to drive it to conform to the outer wall of the tower. The support structure 300 in this embodiment also includes at least two driving members 330, which are mounted on the housing 310. The driving end 331 of the driving member 330 is connected to the support member 320. When the tower is placed on the elastic support plate 320, the driving end 331 of the driving member 330 pushes the elastic support plate 320 to deform, allowing it to conform to the outer wall of the tower, thus enabling the elastic support plate 320 to abut against the outer wall of the tower and adapt to towers of different sizes (i.e., towers with different outer diameters).
[0068] In this embodiment, after the drive member 330 drives the elastic support plate 320 to conform to the outer wall of the tower, the tower can be tied to the vehicle body of the transport tower by setting ropes. At least two ropes are set to conform to the outer wall of the tower on the opposite side of the elastic support plate 320, and the two ends of the ropes are fixed to the vehicle body of the transport tower, so that the tower can be firmly fixed to the elastic support plate 320 after it abuts against the elastic support plate 320.
[0069] Reference Figure 4 and Figure 5 In some embodiments, the support structure 300 further includes a damping pad 340, which is disposed on the side of the support 320 opposite to the damping member 210 and is used to abut against the outer wall of the tower.
[0070] In practical implementation, a damping pad 340 is provided on the side of the support member 320 that faces away from the damping member 210. That is to say, the damping pad 340 is the part that abuts against the outer wall of the tower. The damping pad 340 is laid on the support member 320, which protects the outer wall of the tower and makes the support member 320 bear the force evenly, thus avoiding deformation of the tower due to local contact or small contact area between the support member 320 and the tower.
[0071] Reference Figure 2 and Figure 5 As shown, in some embodiments, the support structure 300 further includes at least two detection elements 350. The detection elements 350 are disposed on the side of the support member 320 away from the shock absorber 210. The detection elements 350 are adjacent to the ends of the support member 320. The detection elements 350 are used to detect the pressure on the support member 320. The driving element 330 is used to drive the support member 320 to move toward the tower when the pressure of the detection element 350 is less than or equal to a preset value.
[0072] The support structure 300 provided in this embodiment also includes at least two detection elements 350, which are disposed between the shock-absorbing pad 340 and the support element 320, and the detection elements 350 are adjacent to the ends of the support element 320. The detection elements 350 are used to detect the pressure on the support element 320. When the tower is placed on the support element 320, if the pressure detected by the detection element 350 at the end is less than or equal to a preset value, it indicates that the support element 320 is not tightly attached to the outer wall of the tower. At this time, the driving element 330 drives the support element 320 to move towards the outer wall of the tower until the pressure detected by the detection element 350 is greater than the preset value. Then, the driving element 330 stops driving, and the support element 320 is tightly attached to the outer wall of the tower. This allows the support structure 300 provided in this embodiment to adapt to towers of different sizes.
[0073] Reference Figure 2 and Figure 4 As shown, in some embodiments, the housing 310 includes two support plates 311 and two connecting plates 312. The support plates 311 and the connecting plates 312 are connected in sequence and together form a first receiving groove 313. The driving member 330 is hinged to the connecting plate 312, and the shock absorber 210 is hinged to the support plate 311. Part of the driving member 330 and part of the shock absorber 210 are located in the first receiving groove 313.
[0074] In a specific implementation, the housing 310 includes two support plates 311 and two connecting plates 312. The support plates 311 and connecting plates 312 are connected sequentially and together form a first receiving groove 313. Both the driving component 330 and the shock absorber 210 are connected to the housing 310. The driving component 330 is hinged to the connecting plate 312, and the shock absorber 210 is hinged to the support plate 311 to avoid connection interference. Placing part of the driving component 330 and part of the shock absorber 210 within the first receiving groove 313 formed by the support plates 311 and connecting plates 312 reduces the volume of the tower support structure provided in this embodiment while also preventing interference with the deformation or movement of the shock absorber 210 within the receiving groove.
[0075] Reference Figure 4 As shown, in some embodiments, the side of the support plate 311 facing the support member 320 is arc-shaped.
[0076] In this embodiment, the support member 320 is arc-shaped. In order to adapt to the arc-shaped structure of the support member 320, the side of the support plate 311 facing the support member 320 is also arc-shaped, thereby adapting to the support plate 320 and not affecting the support plate 320's ability to adapt to tower outer walls of different sizes.
[0077] Reference Figure 1 and Figure 2 As shown, in some embodiments, the base structure 100 includes a housing 110 and at least two support legs 120. The height of the support legs 120 is adjustable. The support legs 120 are connected to the housing 110. The housing 110 has a second receiving groove 111. The shock absorber 210, the first connector 220 and a portion of the housing 310 are located in the second receiving groove 111.
[0078] The base structure 100 provided in this embodiment includes an outer shell 110 and at least two support legs 120. The support legs 120 can be tubular structures and their height is adjustable. The support legs 120 are connected to the outer shell 110 and bear the entire weight of this embodiment.
[0079] To ensure the stability of the tower support, this embodiment allows for at least two support devices to be installed along the length of the tower during transportation and storage. At least one support device is installed at each end along the length of the tower. Compared to using a single support device, the arrangement of multiple support devices increases the stability of the tower support and ensures that each support leg 120 is subjected to even force.
[0080] In a specific implementation, the outer shell 110 has a second receiving groove 111. The shock absorber 210, the first connecting member 220, and part of the shell 310 are all placed in the second receiving groove 111. That is, the first connecting member 220 is laid at the bottom of the second receiving groove 111, and the shock absorber 210 is disposed on the first connecting member 220. The shock absorber 210 deforms or moves in the second receiving groove 111. While reducing the volume of this embodiment, the shock absorber 210 can work stably in a closed space, avoiding external interference.
[0081] The technical solutions of this application have been described above with reference to the preferred embodiments shown in the accompanying drawings. However, it is readily understood by those skilled in the art that the scope of protection of this application is obviously not limited to these specific embodiments. The above embodiments are only used to illustrate the technical solutions of this application and are not intended to limit them. Although this application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some or all of the technical features therein. These modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of this application.
Claims
1. A support arrangement for a tower section, characterised in that, The utility model relates to a wind turbine tower damping device, comprising: a base structure (100); a damping structure (200) comprising a damping piece (210) and a first connecting piece (220), the first connecting piece (220) is connected with the base structure (100), and the damping piece (210) is arranged on the first connecting piece (220); a support structure (300) comprising a shell (310) and a support piece (320) arranged on the shell (310), the support piece (320) is arc-shaped, the support piece (320) is used for supporting a tower drum, the damping piece (210) is hinged with the shell (310), and the damping piece (210) is configured to absorb vibration transmitted to the support piece (320) through the base structure (100).
2. A tower section support arrangement according to claim 1, characterised in that The damping piece (210) comprises a leaf spring (211), a bending part of the leaf spring (211) faces the support piece (320), and the leaf spring (211) has two ears (2111), and the two ears (2111) are hinged with the shell (310).
3. The tower's support arrangement according to claim 1, characterized in that The damping structure (200) further comprises at least two second connecting pieces (230), and the damping piece (210) is hinged with the shell (310) through the second connecting pieces (230).
4. The tower's support arrangement according to claim 1, characterized in that The first connecting piece (220) and the damping piece (210) are both provided with at least two, the first connecting piece (220) is laid on the base structure (100), and the damping piece (210) is connected with the first connecting piece (220) correspondingly.
5. The tower's support arrangement according to claim 1, characterized in that, The support structure (300) further comprises at least two driving pieces (330), the driving pieces (330) are arranged on the shell (310), driving ends (331) of the driving pieces (330) are connected with the support piece (320), the support piece (320) is an elastic support plate, and the driving pieces (330) are used for driving the elastic support plate (320) to move towards the tower drum, so that the elastic support plate (320) abuts against an outer side wall of the tower drum.
6. A tower section support arrangement according to claim 5, wherein The support structure (300) further comprises a damping pad (340), the damping pad (340) is arranged on a side of the support piece (320) away from the damping piece (210), and the damping pad (340) is used for abutting against the outer side wall of the tower drum.
7. The tower's support arrangement according to claim 5, characterized in that The support structure (300) further comprises at least two detection pieces (350), the detection pieces (350) are arranged on a side of the support piece (320) away from the damping piece (210), the detection pieces (350) are adjacent to end portions of the support piece (320), the detection pieces (350) are used for detecting pressure borne by the support piece (320), and the driving pieces (330) are used for driving the support piece (320) to move towards the tower drum when the pressure of the detection pieces (350) is less than or equal to a preset value.
8. The tower's support arrangement according to claim 5, characterized in that The shell (310) comprises two support plates (311) and two connecting plates (312), the support plates (311) and the connecting plates (312) are sequentially connected and jointly enclose a first containing groove (313), the driving member (330) is hinged to the connecting plate (312) in correspondence, the damping member (210) is hinged to the support plate (311) in correspondence, and part of the driving member (330) and part of the damping member (210) are located in the first containing groove (313).
9. A tower section support arrangement according to claim 8, wherein, One side of the support plate (311) facing the support member (320) is arc-shaped.
10. A tower section according to any one of claims 1 to 9, wherein, The base structure (100) comprises a shell (110) and at least two support legs (120), the height of the support leg (120) is adjustable, the support leg (120) is connected with the shell (110), the shell (110) has a second containing groove (111), and the damping member (210), the first connecting member (220) and part of the shell (310) are located in the second containing groove (111).