Guide frame with adjustable guide cylinder structure
By setting an adjustable guide tube structure on the guide frame, the problem that traditional guide tubes cannot adapt to different pile foundation spacings is solved, and the versatility of the guide frame and the construction efficiency are improved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- GUANGDONG POWER ENG
- Filing Date
- 2025-04-30
- Publication Date
- 2026-04-17
AI Technical Summary
The lack of an adjustable guide tube structure in existing technologies means that traditional guide tubes cannot adapt to the pile driving construction of jacket foundations with different pile spacing, resulting in waste of ship and machinery resources and low construction efficiency.
A guide frame with an adjustable guide tube structure was designed. By setting an adjustable guide tube and connecting structure on the main rigid frame, the guide tube can be adjusted in position on the elongated opening to achieve flexible fixing and adapt to the construction needs of different pile foundation spacings.
The guide frame has been improved in its versatility, enabling it to adapt to the pile driving construction of jacket foundations with different pile spacings, thereby reducing resource waste and improving construction efficiency.
Smart Images

Figure CN224133738U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of marine engineering technology, and specifically relates to a guide frame with an adjustable guide tube structure. Background Technology
[0002] With increasing global focus on climate change, offshore wind power, as a clean, low-carbon, and renewable energy source, offers significant environmental advantages. Compared to onshore wind power, offshore wind resources are more abundant, and the development potential is greater. As offshore wind power construction expands into near-shore deep-water areas, the foundation design increasingly favors large-span four-pile jacket foundations. Due to the greater depth and complex sea conditions in near-shore deep-water areas, higher requirements are placed on vessel selection and construction precision. Currently, for four-pile jacket foundation pile foundation construction, fixed-span pile positioning guide frames are commonly used for assisted pile driving. As projects increasingly adopt larger-capacity wind turbine units, the design spacing of four-pile jacket foundation piles also increases. Depending on the geological conditions and turbine load at each turbine location, some projects may have multiple pile foundation design spans with varying requirements. Therefore, the versatility of guide frames is needed to reduce project construction and facility investment costs. Traditional guide tubes can only meet the pile driving of one type of four-pile jacket foundation. They lack flexibility in offshore wind power foundation construction and are not conducive to the recycling of resources. For jacket foundations with different pile spacing, additional guide tubes are required to assist in pile driving, which will result in the waste of ship and machinery resources and construction equipment, and reduce the efficiency of engineering construction, making it difficult to achieve the ideal benefit goals.
[0003] Currently, there is a lack of a guide frame with an adjustable guide tube structure to adapt to the pile driving construction of jacket foundations with different pile spacing.
[0004] Therefore, a new technology is needed to address the lack of a guide frame with an adjustable guide tube structure in existing technologies. Utility Model Content
[0005] To address the aforementioned problems in the prior art, this utility model provides a guide frame with an adjustable guide tube structure, which can adapt to the pile driving construction of the jacket foundation with different pile spacing.
[0006] The present invention adopts the following technical solution:
[0007] A guide frame with an adjustable guide cylinder structure includes a main structure and an adjustable guide cylinder structure; the adjustable guide cylinder structure is disposed on the main structure; the main structure includes a main rigid frame; the adjustable guide cylinder structure includes a guide cylinder and a connecting structure; the connecting structure is connected to the main rigid frame; the connecting structure has an elongated opening; the elongated opening has a set length; the guide cylinder is adjustablely disposed on the elongated opening; by changing the position of the guide cylinder fixed on the elongated opening, the adjustable fixing of the guide cylinder can be achieved.
[0008] Furthermore, the connecting structure includes a first connecting beam, a second connecting beam, and a side frame; the first connecting beam and the second connecting beam are arranged on the side frame at a set distance and form the elongated opening; the side frame is arranged on the main rigid frame.
[0009] Furthermore, each side of the main rigid frame is provided with at least two of the aforementioned connection structures.
[0010] Furthermore, the first connecting beam and / or the second connecting beam are I-beams; the I-beams are provided with several stiffening plates.
[0011] Furthermore, the first connecting beam and / or the second connecting beam are provided with scale dimensions and auxiliary positioning plates along the length direction of the beam; the scale dimensions are used to assist the guide cylinder in adjusting its position; the auxiliary positioning plates are used to assist the guide cylinder in positioning its position.
[0012] Furthermore, the side frame includes a first side connecting assembly, a lateral connecting member, and a second side connecting assembly;
[0013] One end of the lateral connector is connected to the first side connector assembly, and the other end is connected to the second side connector assembly;
[0014] The first connecting beam and the second connecting beam are positioned at a set distance on the transverse connecting member and form the elongated opening;
[0015] The main rigid frame includes several vertical support members;
[0016] One end of the first side connecting component is connected to one of the vertical support members, and the other end is connected to the first connecting beam;
[0017] One end of the second side connecting component is connected to another vertical support adjacent to the first vertical support, and the other end is connected to the second connecting beam.
[0018] Furthermore, the first side connection assembly includes a first side main connector and a first side oblique connector;
[0019] The second side connection assembly includes a second side main connector and a second side oblique connector;
[0020] One end of the transverse connector is connected to the first side main connector, and the other end is connected to the second side main connector;
[0021] One of the vertical support members has a first connection position and a second connection position; another vertical support member adjacent to the first vertical support member has a fourth connection position and a fifth connection position;
[0022] The first connecting beam has a first connecting portion; the second connecting beam has a second connecting portion;
[0023] One end of the first side main connector is connected to the first connection position, and the other end is connected to the first connection part; one end of the first side oblique connector is connected to the second connection position, and the other end is connected to the first connection part;
[0024] One end of the second side main connector is connected to the fourth connection position, and the other end is connected to the second connection part; one end of the second side oblique connector is connected to the fifth connection position, and the other end is connected to the second connection part.
[0025] Furthermore, the guide cylinder is connected to the first connecting beam and the second connecting beam respectively via a connecting device.
[0026] Furthermore, the main structure also includes suction piles; the suction piles are disposed under the main rigid frame.
[0027] Furthermore, the main structure also includes a prism platform frame; the prism platform frame is mounted on the main rigid frame; the prism platform frame includes an auxiliary platform; the auxiliary platform is provided with several lifting lugs; the lifting lugs are used for hoisting.
[0028] Compared with the prior art, the beneficial effects of this utility model are as follows:
[0029] This utility model discloses a guide frame with an adjustable guide tube structure, comprising a main structure and an adjustable guide tube structure. The main structure includes a main rigid frame, and the adjustable guide tube structure includes a guide tube and a connecting structure. The connecting structure is fixedly installed on the side of the main rigid frame and has an elongated opening with a predetermined length. By changing the position of the guide tube welded and fixed at different points in the elongated opening, the position of the guide tube can be adjusted. The adjustable position of the guide tube improves the versatility of the guide frame, enabling it to adapt to pile driving construction of jacket foundations with different pile spacings.
[0030] This invention improves the versatility of the guide frame, enabling it to adapt to the pile driving construction of jacket foundations with different pile spacings, unlike the traditional method which is limited to the same pile spacing for jacket foundation pile driving. Attached Figure Description
[0031] The present invention will be further described in detail below with reference to the accompanying drawings and specific embodiments:
[0032] Figure 1 This is a three-dimensional schematic diagram of the utility model "a guide frame with an adjustable guide cylinder structure";
[0033] Figure 2 yes Figure 1 A partial schematic diagram at point V (in which the upper flange plate, lower flange plate, web plate, stiffening plate, first plane plate, vertical plate, second plane plate, and reinforcing plate are shown, but the plate thickness is not shown).
[0034] Figure 3 yes Figure 1 A magnified view of the area at point S;
[0035] Figure 4 yes Figure 1 Elevation diagram;
[0036] Figure 5 This is a front elevation view of one side of the utility model "a guide frame with an adjustable guide cylinder structure";
[0037] Figure 6 This is a top view of the utility model "a guide frame with an adjustable guide cylinder structure".
[0038] Figure label:
[0039] 1-Guide frame; V-Enlarged view icon number; S-Enlarged view icon number;
[0040] 2-Main structure; 21-Main frame; 211-Vertical support; K1-Upper node; K2-Middle node; K3-Lower node; Q-Vertical support; E1-First connection position; E2-Second connection position; E3-Third connection position; U-Another vertical support; E4-Fourth connection position; E5-Fifth connection position; E6-Sixth connection position; 212-Vertical component; 213-Horizontal component; 214-Diagonal component; M-First structural frame; G-Middle part; N-Internal square frame; 22-Suction pile; 23-Prism platform frame; 231-Auxiliary platform; R-Lifting lug; 232-Main support; 233-Reinforcing component; 2331-First continuous inclined component; 2332-Second inclined component; 2333-Third inclined component; F1-First group of reinforcing components; F2-Second group of reinforcing components; F3-Third group of reinforcing components;
[0041] 3-Adjustable guide tube structure; 31-Guide tube; 311-Flare mouth; 32-Connecting structure; 321-First connecting beam; 322-Second connecting beam; H-Second connecting part; 323-Side outer frame; 324-Long opening; L-Length direction; W-Spacing; A-Upper flange plate; B-Lower flange plate; C-Web plate; D-Stiffening plate; P1-The first connecting structure; P2-The second connecting structure;
[0042] 4-Connecting device; 41-Vertical plate; 42-Flat plate; 421-First flat plate; 422-Second flat plate; 43-Reinforcing plate;
[0043] 51-First side connecting assembly; 511-First side main connector; 512-First side oblique connector; 52-Transverse connector; 53-Second side connecting assembly; 531-Second side main connector; 532-Second side oblique connector. Detailed Implementation
[0044] The following will provide a clear and complete description of the concept, specific structure, and technical effects of this utility model in conjunction with the embodiments and accompanying drawings, so as to fully understand the purpose, solution, and effects of this utility model. It should be noted that, unless otherwise specified, the embodiments and features described in this application can be combined with each other. The same reference numerals used throughout the drawings indicate the same or similar parts.
[0045] It should be noted that, unless otherwise specified, when a feature is referred to as "fixed" or "connected" to another feature, it can be directly fixed or connected to the other feature, or it can be indirectly fixed or connected to the other feature. Furthermore, the descriptions of "upper," "lower," "left," and "right" used in this utility model are only relative to the relative positional relationships of the various components of this utility model in the accompanying drawings.
[0046] Reference Figures 1 to 6 A guide frame 1 with an adjustable guide cylinder structure includes a main structure 2 and an adjustable guide cylinder structure 3; the adjustable guide cylinder structure 3 is disposed on the main structure 2; the main structure 2 includes a main rigid frame 21; the adjustable guide cylinder structure 3 includes a guide cylinder 31 and a connecting structure 32; the connecting structure 32 is connected to the main rigid frame 21; the connecting structure 32 has an elongated opening 324; the elongated opening 324 has a set length (combined with...) Figure 6 (The length direction L in the text is understood as the length); the guide cylinder 31 is adjustablely disposed on the elongated opening 324; by changing the position of the guide cylinder 31 fixed on the elongated opening 324, the adjustable fixing of the guide cylinder 31 can be achieved.
[0047] Reference Figures 1 to 6 In one embodiment, the guide cylinder 31 is welded and fixed to the designated position of the elongated opening 324. Before the guide frame 1 is transported to the offshore operation area for auxiliary pile driving, its guide cylinder 31 has already been adjusted and welded and fixed to flexibly adapt to the spacing requirements of the pile foundations during offshore operations. During offshore construction, if it is found that the position of the guide cylinder 31 does not match the pile foundation spacing, the guide frame 1 of this utility model can be transported back to the factory, the guide cylinder 31 can be cut off, repositioned, and welded and fixed to the accurate position of the elongated opening 324, thereby achieving adjustable fixing. In addition, if there is a new project, when the guide frame 1 needs to adapt to a different pile foundation spacing to assist pile driving, the guide cylinder 31 can be directly cut off, its position readjusted, and then the guide cylinder 31 can be welded and fixed to the accurate position of the elongated opening 324. The elongated opening 324 of this invention has a set length, providing leeway for adjusting the position of the guide cylinder 31. This allows the guide cylinder 31 to be readjusted and fixed, effectively avoiding the product scrapping problem caused by the mismatch between the fixed guide cylinder and the pile foundation spacing, which prevents readjustment. This invention can adapt to the pile driving construction of jacket foundations with different pile foundation spacings. The emergence of this invention improves the versatility of the guide frame 1.
[0048] Reference Figures 1 to 6 In one embodiment, the connecting structure 32 includes a first connecting beam 321, a second connecting beam 322, and a side frame 323. The first connecting beam 321 and the second connecting beam 322 are positioned at a set distance W on the side frame 323, forming the elongated opening 324. Specifically, the guide cylinder 31 is positioned at the elongated opening 324 and is connected to the first connecting beam 321 and the second connecting beam 322 respectively via a connecting device 4. When the position of the guide cylinder 31 needs to be changed, the connection between the connecting device 4 and the first connecting beam 321 and the second connecting beam 322 must first be severed before the position is adjusted. After the position is determined, the connecting device 4 is then welded and fixed to the first connecting beam 321 and the second connecting beam 322 respectively. The side frame 323 is mounted on the main frame 21.
[0049] Reference Figures 1 to 6 In one embodiment, each side of the main rigid frame 21 is provided with at least two connecting structures 32, each connecting structure 32 including the first connecting beam 321, the second connecting beam 322 and the side outer frame 323; each connecting structure 32 has the elongated opening 324; the guide cylinder 31 on one side of the main rigid frame 21 is provided on the upper and lower connecting structures 32.
[0050] In one embodiment, the first connecting beam 321 and / or the second connecting beam 322 are I-beams; the I-beams are provided with a plurality of stiffening plates D, the stiffening plates D being connected between the upper flange plate A and the lower flange plate B of the I-beams and connected to the web plate C of the I-beams.
[0051] Reference Figures 1 to 6 In one embodiment, the first connecting beam 321 and the second connecting beam 322 are I-beams with the same specifications and dimensions.
[0052] Reference Figures 1 to 6 In one embodiment, the connecting device 4 comprises a vertical plate 41, a flat plate 42, and a reinforcing plate 43. Specifically, the flat plate 42 includes a first flat plate 421 and a second flat plate 422. The first flat plate 421 is provided with a plurality of spaced vertical plates 41. The second flat plate 422 is provided on the plurality of vertical plates 41. The second flat plate 422 is provided on the second flat plate 422 with a plurality of spaced reinforcing plates 43. Preferably, the first flat plate 421, the vertical plates 41, the second flat plate 422, and the reinforcing plates 43 are all connected to the body of the guide cylinder 31. Preferably, the first connecting beam 321 and the second connecting beam 322 are both I-beams. One side of the guide cylinder 31 is connected (e.g., welded) to the upper flange plate A of the first connecting beam 321 via the first flat plate 421 of the connecting device 4. The other side of the guide cylinder 31 is connected (e.g., welded) to the upper flange plate A of the second connecting beam 322 via the first flat plate 421 of the connecting device 4. When the position of the guide cylinder 31 needs to be changed, the connection between the first flat plate 421 on one side and the upper flange plate A of the first connecting beam 321 must be cut off first, and the connection between the first flat plate 421 on the other side and the upper flange plate A of the second connecting beam 322 must be cut off first, before the position of the guide cylinder 31 can be adjusted. After the position of the guide cylinder 31 is accurately positioned, the first flat plate 421 on one side is welded to the upper flange plate A of the first connecting beam 321, and the first flat plate 421 on the other side is welded to the upper flange plate A of the second connecting beam 322.
[0053] In one embodiment, the first connecting beam 321 and / or the second connecting beam 322 are provided with scale dimensions (not shown in the figures) and auxiliary positioning plates (not shown in the figures) along the length direction L of the beam; the scale dimensions are used to assist in adjusting the position of the guide cylinder 31; the auxiliary positioning plates are used to assist in positioning the guide cylinder 31. When the position of the guide cylinder 31 is readjusted, the position of the guide cylinder 31 can be precisely adjusted by relying on the scale dimensions and the auxiliary positioning plates, which is beneficial to ensuring that the guide cylinder matches the pile foundation spacing and to ensuring the accuracy of guiding pile feeding during offshore construction.
[0054] In one embodiment, both the first connecting beam 321 and the second connecting beam 322 are I-beams, and the scale dimensions are set on the upper flange plate A of the I-beam along the length direction L of the I-beam.
[0055] Reference Figures 1 to 6 In one embodiment, the side frame 323 includes a first side connecting assembly 51, a lateral connector 52, and a second side connecting assembly 53;
[0056] One end of the transverse connector 52 is connected to the first side connector 51, and the other end is connected to the second side connector 53;
[0057] The first connecting beam 321 and the second connecting beam 322 are disposed on the transverse connecting member 52 at a set distance W, forming the elongated opening 324;
[0058] The main rigid frame 21 includes several vertical support members 211;
[0059] One end of the first side connecting component 51 is connected to a vertical support member Q, and the other end is connected to the first connecting beam 321;
[0060] One end of the second side connecting component 53 is connected to another vertical support member U adjacent to the vertical support member Q, and the other end is connected to the second connecting beam 322.
[0061] Reference Figures 1 to 6 In one embodiment, the first side connection component 51 includes a first side main connector 511 and a first side oblique connector 512;
[0062] The second side connection assembly 53 includes a second side main connector 531 and a second side oblique connector 532;
[0063] One end of the transverse connector 52 is connected to the first side main connector 511, and the other end is connected to the second side main connector 531;
[0064] One of the vertical support members Q has a first connection position E1 and a second connection position E2; another vertical support member U adjacent to the first vertical support member Q has a fourth connection position E4 and a fifth connection position E5;
[0065] The first connecting beam 321 has a first connecting portion; the second connecting beam 322 has a second connecting portion H;
[0066] One end of the first side main connector 511 is connected to the first connection position E1, and the other end is connected to the first connection part; one end of the first side oblique connector 512 is connected to the second connection position E2, and the other end is connected to the first connection part;
[0067] One end of the second side main connector 531 is connected to the fourth connection position E4, and the other end is connected to the second connection part H; one end of the second side oblique connector 532 is connected to the fifth connection position E5, and the other end is connected to the second connection part H.
[0068] Reference Figures 1 to 6 Preferably, the first side main connector 511, the first side oblique connector 512, the transverse connector 52, the second side main connector 531, and the second side oblique connector 532 are all pipe fittings.
[0069] Reference Figures 1 to 6 In one embodiment, the first connecting portion and / or the second connecting portion H is made of a stiffening plate (the stiffening plate here can be referred to as...). Figure 2 The structure consists of a stiffening plate D (understood) and a side panel. The stiffening plate is an "I"-shaped stiffening plate, and the side panel is a "I"-shaped side panel. The "I"-shaped side panel is vertically arranged on the edge of the "I"-shaped stiffening plate, forming a "T"-shaped structure. After the (first and second) connecting parts are set, the side panel is parallel to the web C.
[0070] Reference Figures 1 to 6 In one embodiment, the main structure 2 further includes a suction pile 22; the suction pile 22 is disposed under the main rigid frame 21.
[0071] Reference Figures 1 to 6In one embodiment, the main frame 21 is composed of vertical support members 211, vertical members 212, horizontal members 213, and diagonal members 214. Specifically, the vertical support member 211 has an upper node K1, a middle node K2, and a lower node K3. Four vertical support members 211 are provided. One horizontal member 213 is connected at one end to the upper node K1 of a vertical support member Q, and at the other end to the upper node K1 of another vertical support member U adjacent to the vertical support member Q. Finally, the four horizontal members 213, together with the four upper nodes K1, form a first structural frame M, which is square from a top view (in conjunction with...). Figure 5 and Figure 6 (For understanding); the middle parts G of each top-view side of the first structural frame M are successively connected by connectors to form the inner square frame N of the first structural frame M (in combination with...) Figure 6 (For understanding). Preferably, the diagonal portions of the inner square frame N are connected to each other by connectors to form a cross support for the inner square frame N. Figure 6 (Not shown). Further, one end of one of the horizontal members is connected to the midpoint K2 of one of the vertical support members Q, and the other end is connected to the midpoint K2 of another vertical support member U adjacent to the vertical support member Q. Finally, the four horizontal members, together with the four midpoint K2s, form a second structural frame that appears square from a top view (see reference). Figure 6 (The first structural frame M understands the second structural frame). Further, the middle part G of each top-view side of the first structural frame M and the second structural frame is vertically connected by the vertical member 212. Furthermore, each side facade of the main rigid frame 21 is provided with four inclined members 214. The first inclined member 214 is connected at one end to the upper node K1 of the vertical support member Q and at the other end to the middle of the horizontal member of the second structural frame. The second inclined member 214 is connected at one end to the upper node K1 of another vertical support member U adjacent to the vertical support member Q and at the middle of the horizontal member of the second structural frame. The third inclined member 214 is connected at one end to the lower node K3 of the vertical support member Q and at the middle of the horizontal member of the second structural frame. The fourth inclined member 214 is connected at one end to the lower node K3 of another vertical support member U adjacent to the vertical support member Q and at the middle of the horizontal member of the second structural frame. Finally, after the four inclined members 214 are set, the facade is "X" shaped. The suction pile 22 is set at the lower node K3 of the vertical support member 211.
[0072] Reference Figures 1 to 6 Preferably, the vertical support 211, the vertical member 212, the horizontal member 213 and the inclined member 214 are all tubular components.
[0073] Reference Figures 1 to 6 Preferably, the main frame 21 has four sides, and each side of the main frame 21 is provided with two connecting structures 32; each connecting structure 32 includes a first connecting beam 321, a second connecting beam 322, and a side frame 323; each connecting structure 32 has an elongated opening 324; the guide cylinder 31 on one side of the main frame 21 is provided on the upper and lower connecting structures 32; specifically, a vertical support Q has a first connecting position E1 (as above node K1), a second connecting position E2 (as in the middle node K2), and a third connecting position E3 (as below node K3); another vertical support U adjacent to a vertical support Q has a fourth connecting position E4 (as above node K1), a fifth connecting position E5 (as in the middle node K2), and a sixth connecting position E6 (as below node K3);
[0074] One end of the first side main connector 511 of the first connection structure P1 is connected to the first connection position E1, and the other end is connected to the first connection part of the first connecting beam 321 of the first connection structure P1; one end of the first side oblique connector 512 of the first connection structure P1 is connected to the second connection position E2, and the other end is connected to the first connection part of the first connecting beam 321 of the first connection structure P1.
[0075] One end of the second side main connector 531 of the first connection structure P1 is connected to the fourth connection position E4, and the other end is connected to the second connection part H of the second connection beam 322 of the first connection structure P1; one end of the second side oblique connector 532 of the first connection structure P1 is connected to the fifth connection position E5, and the other end is connected to the second connection part H of the second connection beam 322 of the first connection structure P1.
[0076] One end of the first side main connector 511 of the second connection structure P2 is connected to the second connection position E2, and the other end is connected to the first connection part of the first connecting beam 321 of the second connection structure P2; one end of the first side oblique connector 512 of the second connection structure P2 is connected to the third connection position E3, and the other end is connected to the first connection part of the first connecting beam 321 of the second connection structure P2.
[0077] One end of the second side main connector 531 of the second connection structure P2 is connected to the fifth connection position E5, and the other end is connected to the second connection part H of the second connection beam 322 of the second connection structure P2; one end of the second side oblique connector 532 of the second connection structure P2 is connected to the sixth connection position E6, and the other end is connected to the second connection part H of the second connection beam 322 of the second connection structure P2.
[0078] In one embodiment, the upper end of the guide cylinder 31 is provided with a flared opening 311 (see reference). Figures 1 to 6 The guide cylinder 31 is provided with a measuring equipment mounting groove (see prior art); the guide cylinder 31 is provided with guide ribs arranged vertically inside (see prior art). During offshore pile foundation positioning operations, steel pipe piles (a type of pile foundation) can be driven from top to bottom through the bell mouth 311 of the guide cylinder 31.
[0079] Reference Figures 1 to 6 In one embodiment, four vertical support members 211 are provided on the main structure 2, and four suction piles 22 are arranged accordingly; the main frame 21 has four sides, and each side is provided with an adjustable guide tube structure 3, with a total of four adjustable guide tube structures 3. The guide frame 1 of this embodiment can adapt to the pile driving construction of four-pile guide frame foundation with different pile spacing.
[0080] Reference Figures 1 to 6 In one embodiment, the main structure 2 further includes a prism platform frame 23; the prism platform frame 23 is disposed on the main rigid frame 21; the prism platform frame 23 includes an auxiliary platform 231; the auxiliary platform 231 is provided with a plurality of lifting lugs R; the lifting lugs R are used for hoisting. Preferably, the lifting lugs R are disposed on the auxiliary platform 231 as permanent structures.
[0081] Reference Figures 1 to 6 In one embodiment, four lifting lugs R are provided, respectively arranged at four positions on the auxiliary platform 231; the lifting lugs R of this utility model are beneficial for the lifting equipment to hook the lifting point on the top of the auxiliary platform 231 for lifting operations, beneficial for reducing the length of the steel wire rope used for lifting, beneficial for reducing the interference caused by excessively long steel wire ropes during construction, beneficial for ensuring the stability of the guide frame 1 during construction, and beneficial for improving the lifting accuracy of the guide frame 1.
[0082] Reference Figures 1 to 6 In one embodiment, the prism platform frame 23 further includes main support members 232 and reinforcing components 233; four main support members 232 are provided; one end of each main support member 232 is connected to the upper end of the vertical support member 211, and the other end is connected to the auxiliary platform 231; the reinforcing component 233 is formed by the cross arrangement of a first continuous inclined member 2331, a second inclined member 2332, and a third inclined member 2333, and the reinforcing component 233 is an "X" shaped reinforcing component; the reinforcing component 233 connects adjacent main support members 232. The reinforcing component 233 of this utility model enhances the overall rigidity and stability of the main structure 2, which helps to ensure that the guide frame 1 remains stable when subjected to various loads.
[0083] Reference Figures 1 to 6 In one embodiment, the main support member 232, the first continuous inclined member 2331, the second inclined member 2332, and the third inclined member 2333 are all pipe fittings.
[0084] Reference Figures 1 to 6 In one embodiment, the prism platform frame 23 is a "regular square frustum" frame; each side of the prism platform frame 23 is provided with three sets of the reinforcing components 233; viewed from the auxiliary platform 231 toward the main frame 21, the lengths of the same-named components from the first set of reinforcing components F1 to the third set of reinforcing components F3 increase with each set. For example, the length of the first continuous inclined component 2331 of the first set of reinforcing components F1 is less than the length of the first continuous inclined component 2331 of the second set of reinforcing components F2; for example, the length of the second inclined component 2332 of the first set of reinforcing components F1 is less than the length of the second inclined component 2332 of the second set of reinforcing components F2; for example, the length of the third inclined component 2333 of the first set of reinforcing components F1 is less than the length of the third inclined component 2333 of the second set of reinforcing components F2.
[0085] In one embodiment, the auxiliary platform 231 is equipped with a construction work railing and a platform safety net (see prior art).
[0086] Other aspects of the guide frame with adjustable guide cylinder structure described in this utility model can be found in the prior art and will not be repeated here.
[0087] The above description is merely a preferred embodiment of the present utility model and is not intended to limit the present utility model in any way. Therefore, any modifications, equivalent changes, and alterations made to the above embodiments based on the technical essence of the present utility model without departing from the technical solution of the present utility model shall still fall within the scope of the technical solution of the present utility model.
Claims
1. A guide frame with an adjustable guide cylinder structure, characterized in that, It includes a main structure and an adjustable guide tube structure; the adjustable guide tube structure is disposed on the main structure; the main structure includes a main rigid frame; the adjustable guide tube structure includes a guide tube and a connecting structure; the connecting structure is connected to the main rigid frame; the connecting structure has an elongated opening; the elongated opening has a set length; the guide tube is adjustablely disposed on the elongated opening.
2. The guide frame with an adjustable guide cylinder structure according to claim 1, characterized in that, The connecting structure includes a first connecting beam, a second connecting beam, and a side frame; the first connecting beam and the second connecting beam are arranged on the side frame at a set distance and form the elongated opening; the side frame is arranged on the main rigid frame.
3. The guide carriage with an adjustable guide cylinder structure according to claim 2, characterized in that, Each side of the main rigid frame is provided with at least two of the aforementioned connection structures.
4. The guide carriage with an adjustable guide cylinder structure according to claim 2, characterized in that, The first connecting beam and / or the second connecting beam are I-beams; the I-beams are provided with several stiffening plates.
5. The guide carriage with an adjustable guide cylinder structure according to claim 2, characterized in that, The first connecting beam and / or the second connecting beam are provided with scale dimensions along the length of the beam; the scale dimensions are used to assist the guide cylinder in adjusting its position.
6. The guide carriage with an adjustable guide cylinder structure according to claim 2, characterized in that, The side frame includes a first side connecting assembly, a lateral connecting piece, and a second side connecting assembly; One end of the lateral connector is connected to the first side connector assembly, and the other end is connected to the second side connector assembly; The first connecting beam and the second connecting beam are positioned at a set distance on the transverse connecting member and form the elongated opening; The main rigid frame includes several vertical support members; One end of the first side connecting component is connected to one of the vertical support members, and the other end is connected to the first connecting beam; One end of the second side connecting component is connected to another vertical support adjacent to the first vertical support, and the other end is connected to the second connecting beam.
7. The guide carriage with an adjustable guide cylinder structure according to claim 6, characterized in that, The first side connection assembly includes a first side main connector and a first side oblique connector; The second side connection assembly includes a second side main connector and a second side oblique connector; One end of the lateral connector is connected to the first side main connector, and the other end is connected to the second side main connector; One of the vertical support members has a first connection position and a second connection position; another vertical support member adjacent to the first vertical support member has a fourth connection position and a fifth connection position; The first connecting beam has a first connecting portion; the second connecting beam has a second connecting portion; One end of the first side main connector is connected to the first connection position, and the other end is connected to the first connection part; one end of the first side oblique connector is connected to the second connection position, and the other end is connected to the first connection part; One end of the second side main connector is connected to the fourth connection position, and the other end is connected to the second connection part; one end of the second side oblique connector is connected to the fifth connection position, and the other end is connected to the second connection part.
8. The guide carriage with an adjustable guide cylinder structure according to claim 2, characterized in that, The guide cylinder is connected to the first connecting beam and the second connecting beam respectively through a connecting device.
9. The guide carriage with an adjustable guide cylinder structure according to claim 1, characterized in that, The main structure also includes suction piles; the suction piles are installed under the main rigid frame.
10. A guide frame with an adjustable guide cylinder structure according to any one of claims 1 to 9, characterized in that, The main body structure further comprises a prism platform frame; the prism platform frame is arranged on the main body frame; the prism platform frame comprises an auxiliary platform; a plurality of lifting lugs are arranged on the auxiliary platform; the lifting lugs are used for hoisting.