Foldable small component removal tool
By designing a foldable small component removal tool, the problems of limited functionality and poor portability of existing tools have been solved, achieving multi-functional adaptability and efficient operation, suitable for scenarios such as building construction and machinery maintenance.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- WUHAN JINHONG ENG LABOR SERVICE CO LTD
- Filing Date
- 2025-08-26
- Publication Date
- 2026-07-31
AI Technical Summary
Existing demolition tools are limited in function, bulky, and inconvenient to carry and operate, especially in narrow or high-altitude environments.
A foldable small component removal tool has been designed, including an adjustable-length telescopic rod and a multi-functional removal component. The components are connected by connectors to form a foldable structure, which can adapt to the removal needs of various small components and has good portability and operability.
It achieves multi-functional dismantling, adapts to complex work scenarios, reduces tool size, is easy to carry and store, and improves operability and work efficiency in confined spaces.
Smart Images

Figure CN224575562U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of demolition tool technology, specifically relating to a foldable small component demolition tool. Background Technology
[0002] In construction, machinery maintenance, and other scenarios, it is often necessary to dismantle various small components, such as small bolts, rivets, and embedded connectors.
[0003] Existing demolition tools have many shortcomings. Conventional tools such as pliers and wrenches, while highly targeted, have limited functions and cannot meet the demolition needs of various components. At the same time, most existing tools are bulky and inconvenient to carry and store, especially in some work environments with limited space. The operability and portability of tools are even more prominent when working at heights or in special environments such as narrow tunnels or inside equipment.
[0004] To address the aforementioned problems, this utility model proposes a foldable small component removal tool. Utility Model Content
[0005] To address the aforementioned problems in the existing technology, this utility model provides a foldable small component removal tool. This tool can adapt to the removal needs of various small components, has good portability and operability, and can be folded and stored when not in use, making it convenient to carry and store.
[0006] To achieve the above objectives, this utility model provides the following technical solution: a foldable small component removal tool, comprising:
[0007] At least two adjustable telescopic rods;
[0008] Connector, the telescopic rod is connected via the connector to form a foldable structure; and
[0009] A multi-functional dismantling assembly, at least one set of the multi-functional dismantling assembly is detachably disposed at the end of the telescopic rod, and the multi-functional dismantling assembly is provided with at least two dismantling parts for adapting to different small components.
[0010] As a preferred embodiment of this utility model, the connector includes:
[0011] A connecting block, wherein the connecting block is provided with two symmetrically distributed mounting ports;
[0012] A fixing block is fixed to the end of the telescopic rod and embedded in the mounting port. A plurality of second positioning grooves are provided on the fixing block at equal intervals along the circumference.
[0013] A connecting shaft, fixed to the fixing block, and passing through the connecting block to form a rotating structure; and
[0014] The second manual bolt is installed on the connecting block by means of thread engagement, and the end of the second manual bolt is embedded in the second positioning groove.
[0015] As a preferred embodiment of this utility model, the telescopic rod includes:
[0016] A square tube with a cavity;
[0017] A square rod, partially embedded within the square tube to form a telescopic structure, has multiple first positioning grooves evenly spaced along its length.
[0018] The first manual bolt is installed on the square tube by means of thread engagement, and the end of the first manual bolt is embedded in the first positioning groove.
[0019] In a preferred embodiment of this invention, the outer wall of the square rod is fitted to the inner wall of the square tube.
[0020] As a preferred embodiment of this utility model, the multifunctional dismantling assembly includes a first dismantling component, the first dismantling component comprising:
[0021] A first mounting block is detachably mounted to the end of the telescopic rod;
[0022] An axe blade, fixed to the outer wall of the first mounting block, wherein the end of the axe blade away from the first mounting block is provided with a cutting edge; and
[0023] A pry bar, which is fixed to the outer wall of the first mounting block.
[0024] As a preferred embodiment of the present invention, the first dismantling component further includes:
[0025] The third manual bolt is installed on the first mounting block by means of thread engagement, and the end of the third manual bolt is embedded in the first positioning groove. The first mounting block has a positioning connection cavity, the end of the square rod is embedded in the positioning connection cavity, and the third manual bolt is embedded in the first positioning groove.
[0026] As a preferred embodiment of this utility model, the multifunctional dismantling assembly includes a second dismantling component, the second dismantling component comprising:
[0027] An operating panel, detachably mounted to the end of the telescopic rod; and
[0028] An arc-shaped bend is formed at the end of the operating plate away from the telescopic rod, and a locking slot is provided on the arc-shaped bend.
[0029] As a preferred embodiment of this utility model, the second dismantling component further includes:
[0030] The fourth manual bolt is provided. The operating plate is provided with a second connecting cavity. The end of the square rod is embedded in the second connecting cavity. The fourth manual bolt is installed on the operating plate by thread engagement, and the end of the fourth manual bolt is embedded in the first positioning groove.
[0031] As a preferred technical solution of this utility model, the operation panel is provided with a plurality of regular hexagonal through holes of different diameters.
[0032] Compared with the prior art, the beneficial effects of this utility model are:
[0033] 1. Integrates multiple functions such as prying, chopping, and twisting, and is compatible with various small components such as bolts, rivets, and embedded connectors, reducing the number of tools to carry and adapting to complex work scenarios;
[0034] 2. The foldable and retractable design significantly reduces the overall volume when folded, making it easy to carry and store in tight spaces;
[0035] 3. The foldable and retractable design allows for adjustment of angle and length according to the working space (such as deep cavities or high places), ensuring precise force application in special environments and improving work efficiency;
[0036] 4. The detachable multi-functional dismantling component design allows users to replace different dismantling parts according to specific needs, further expanding the tool's applicability and reducing usage costs.
[0037] Other additional advantages and beneficial effects of this invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of this invention. Attached Figure Description
[0038] The accompanying drawings are provided to further illustrate the present invention and form part of the specification. They are used together with the embodiments of the present invention to explain the present invention, but do not constitute a limitation thereof. In the drawings:
[0039] Figure 1 This is a schematic diagram of the structure of this utility model;
[0040] Figure 2 This utility model Figure 1 Enlarged structural diagram at point A in the diagram;
[0041] Figure 3This is a schematic diagram of the isometric structure of the telescopic rod in this utility model;
[0042] Figure 4 This is an isometric structural diagram of the first dismantling component in this utility model;
[0043] Figure 5 This is an isometric structural diagram of the second dismantling component in this utility model.
[0044] In the diagram: 1. Telescopic rod; 11. Square tube; 12. Square rod; 121. First positioning groove; 13. First manual bolt; 2. Connector; 21. Connecting block; 211. Mounting port; 22. Fixing block; 221. Second positioning groove; 23. Connecting shaft; 24. Second manual bolt; 3. First dismantling component; 31. First mounting block; 311. Positioning connecting cavity; 32. Axe plate; 321. Blade; 33. Pry plate; 34. Third manual bolt; 4. Second dismantling component; 41. Operating panel; 411. Second connecting cavity; 412. Hexagonal through hole; 42. Arc-shaped bend; 421. Bayonet; 43. Fourth manual bolt. Detailed Implementation
[0045] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0046] Please see Figures 1-5 The present invention provides the following technical solution: a foldable small component removal tool, comprising: at least two telescopic rods 1 with adjustable length, a connector 2, and a multi-functional removal assembly.
[0047] Furthermore, by Figure 1 As shown in this embodiment, the telescopic rod 1 is connected to a foldable structure via the connector 2. At least one set of multi-functional dismantling components is detachably installed at the end of the telescopic rod 1, and the multi-functional dismantling components are provided with at least two dismantling parts for adapting to different small components. With the above solution, when in use, firstly, according to the space constraints and operational requirements of the work scenario, the telescopic rod 1 is folded or unfolded via the connector 2. Before storage or operation in a narrow space, the telescopic rod 1 can be folded to a compact state for easy carrying and movement in narrow areas; when it needs to be unfolded for use, the telescopic rod 1 is adjusted to the required unfolding angle (such as a straight line to extend the operating distance, or a certain angle to adapt to multi-angle operations).
[0048] Secondly, depending on the type of small components to be removed (such as clips, nails, small screws, plastic clips, etc.), select the appropriate removal part on the multi-functional removal assembly. Since the multi-functional removal assembly adopts a detachable design, if the removal part of the current assembly cannot meet the requirements, other assemblies can be quickly replaced; if multiple removal parts on the same assembly can cover the operation requirements, the operation can be carried out directly through the multi-functional removal assembly at the end of the telescopic rod 1.
[0049] Next, by adjusting the length of the telescopic rod 1 to suit the working height and distance, the operator can stretch or shorten the rod of the telescopic rod 1 according to the position of the component to be removed (such as small decorative parts at high places or interlocking components at low places) until the most comfortable operating length is achieved.
[0050] Finally, the selected dismantling section is used to dismantle small components. During the operation, the rigid structure of the telescopic rod 1 can transmit sufficient force, and the multi-angle operation mode formed after folding allows the operator to easily adjust the direction of force in complex spaces (such as furniture gaps and equipment interiors), achieving efficient and safe dismantling of different small components.
[0051] Optionally, by Figure 1 and Figure 2 As shown, in this embodiment, the connector 2 includes: a connecting block 21, a fixing block 22, a connecting shaft 23, and a second manual bolt 24. The connecting block 21 has two symmetrically distributed mounting openings 211. The fixing block 22 is fixed to the end of the telescopic rod 1 and embedded in the mounting openings 211. Multiple second positioning grooves 221 are evenly spaced along the circumference on the fixing block 22. The connecting shaft 23 is fixed to the fixing block 22 and passes through the connecting block 21 to form a rotating structure. The second manual bolt 24 is installed on the connecting block 21 by thread engagement, and the end of the second manual bolt 24 is embedded in the second positioning groove 221. The above method is used... After the incident, when it is necessary to adjust the included angle between the two telescopic rods 1 during use, the operator first loosens the second manual bolt 24. Since the second manual bolt 24 is connected to the connecting block 21 by threaded engagement, the loosening action will cause its end to exit from the second positioning groove 221 of the fixing block 22, releasing the locking of the fixing block 22. At this time, the fixing block 22 can rotate around the connecting shaft 23. Because the connecting shaft 23 is fixed to the fixing block 22 and passes through the connecting block 21, it forms a stable rotating structure. The fixing block 22 is also embedded in the mounting port 211 of the connecting block 21. During the rotation, it can maintain good guidance and avoid deviation or shaking.
[0052] As the fixed block 22 rotates, the telescopic rod 1 will rotate accordingly until the required angle is formed between the two telescopic rods 1. At this time, the operator observes the second positioning groove 221 on the fixed block 22. When a certain second positioning groove 221 corresponds to the position of the second manual bolt 24, the second manual bolt 24 is tightened so that its end is re-embedded in the second positioning groove 221. Since multiple second positioning grooves 221 are evenly distributed along the circumference, the rotation position of the fixed block 22 can be precisely limited, thereby achieving precise positioning of the angle of the telescopic rod 1.
[0053] Through the above operations, the connector 2 not only meets the flexible adjustment requirements of the telescopic rod 1 at different angles, but also ensures the stability of the angle of the telescopic rod 1 by cooperating with the second manual bolt 24 and the second positioning groove 221 after adjustment. This provides reliable structural support for subsequent small component dismantling operations and avoids affecting the operation accuracy or causing safety hazards due to angle deviation.
[0054] Optionally, by Figure 1 and Figure 3 As shown in this embodiment, the telescopic rod 1 includes: a square tube 11 with a cavity, a square rod 12, and a first manual bolt 13. The square rod 12 is partially embedded in the square tube 11 to form a telescopic structure. Multiple first positioning grooves 121 are provided on the square rod 12 at equal intervals along its length. The first manual bolt 13 is installed on the square tube 11 by thread engagement, and the end of the first manual bolt 13 is embedded in the first positioning groove 121. The outer wall of the square rod 12 is attached to the inner wall of the square tube 11. With the above solution, when it is necessary to adjust the overall length of the telescopic rod 1 to adapt to different working distances or spaces, the operator first loosens the first manual bolt 13. Since the first manual bolt 13 is installed on the square tube 11 by thread engagement, the loosening action will cause its end to disengage from the first positioning groove 121 of the square rod 12, releasing the locking of the relative positions of the two.
[0055] At this time, the square rod 12 can slide and extend along the cavity of the square tube 11. The outer wall of the square rod 12 is tightly fitted with the inner wall of the square tube 11. This square structure can effectively limit the relative rotation of the two, ensuring that the rod will not rotate during the extension and retraction process, thus ensuring the stability and accuracy of the operation. The operator can pull the square rod 12 out of the square tube 11 or push it in according to actual needs until the extension rod 1 reaches the required length.
[0056] After determining the appropriate length, the operator observes the first positioning grooves 121 evenly distributed along the length direction on the square rod 12. When a certain first positioning groove 121 corresponds to the position of the first manual bolt 13 on the square tube 11, the first manual bolt 13 is tightened so that its end is firmly embedded in the first positioning groove 121. Through the tight cooperation between the first manual bolt 13 and the first positioning groove 121, the relative position of the square rod 12 and the square tube 11 is fixed, thereby keeping the telescopic rod 1 at the set length, providing stable support and a suitable operating range for subsequent small component dismantling operations.
[0057] Optionally, by Figure 1 , Figure 3 and Figure 4 As shown, in this embodiment, the multi-functional demolition assembly includes a first demolition component 3, which includes a first mounting block 31, an axe plate 32, a pry plate 33, and a third manual bolt 34. The first mounting block 31 is detachably mounted on the end of the telescopic rod 1. The axe plate 32 is fixed to the outer wall of the first mounting block 31, and the end of the axe plate 32 away from the first mounting block 31 is provided with a blade 321. The pry plate 33 is fixed to the outer wall of the first mounting block 31. The first mounting block 31 is provided with a positioning connection cavity 311, and the end of the square rod 12 is embedded in the positioning connection cavity 311. The third manual bolt 34 is installed on the first mounting block 31 by thread engagement, and the end of the third manual bolt 34 is embedded in the first positioning groove 121. With the above solution, in use, the first demolition component is first... 3. Installation and fixing of the telescopic rod 1: The operator aligns the end of the square rod 12 with the positioning connection cavity 311 of the first mounting block 31 and inserts it therein. The outer wall of the square rod 12 fits against the inner wall of the positioning connection cavity 311, ensuring the accuracy and stability of the connection between the two and preventing shaking after installation. Then, the third manual bolt 34 is tightened. Since the third manual bolt 34 is installed on the first mounting block 31 by thread engagement, its end will gradually embed into the first positioning groove 121 on the square rod 12 during the tightening process. Through the tight cooperation between the third manual bolt 34 and the first positioning groove 121, the first mounting block 31 is firmly fixed to the end of the square rod 12, thereby realizing the reliable connection between the first dismantling part 3 and the telescopic rod 1, providing a stable foundation for subsequent dismantling operations.
[0058] When demolition work is required, the axe 32 or pry bar 33 can be selected according to the characteristics of small components. If the component to be demolished is a small wooden connector, the blade 321 of the axe 32 away from the first mounting block 31 is used to chop the component with the force transmitted by the telescopic rod 1. The sharp design of the blade 321 can effectively improve the chopping efficiency and quickly destroy the structure of the component.
[0059] If a component needs to be pried, such as a tightly fitted metal clip or a small stone, a pry bar 33 is used. The end of the pry bar 33 is inserted into the gap between the component and the mounting surface. Using the lever principle, the force is applied through the telescopic rod 1. The pry bar 33 will generate an upward or outward prying force to separate the component from the mounting surface and complete the removal.
[0060] During the operation, since the first demolition component 3 is firmly connected to the telescopic rod 1, and the telescopic rod 1 can be adjusted in length and angle as needed, the operator can flexibly adjust the direction and force of the applied force to ensure that the axe plate 32 and the pry plate 33 can accurately act on the target component, thus achieving efficient and safe demolition operation. When the first demolition component 3 is no longer needed, the third manual bolt 34 can be loosened so that its end can be removed from the first positioning groove 121, and the first mounting block 31 can be removed from the end of the square rod 12 for easy replacement with other multi-functional demolition components.
[0061] Optionally, by Figure 1 , Figure 3 and Figure 5 As shown, in this embodiment, the multi-functional dismantling assembly includes a second dismantling component 4, which includes an operating plate 41, an arc-shaped bending portion 42, and a fourth manual bolt 43. The operating plate 41 is detachably mounted on the end of the telescopic rod 1. The arc-shaped bending portion 42 is formed on the end of the operating plate 41 away from the telescopic rod 1, and a slot 421 is provided on the arc-shaped bending portion 42. The operating plate 41 has a second connecting cavity 411, and the end of the square rod 12 is embedded in the second connecting cavity 411. The fourth manual bolt 43 is installed on the operating plate 41 by thread engagement, and the end of the fourth manual bolt 43 is embedded in the first positioning groove 121. The operating plate 41 has multiple regular hexagonal through holes 4 with different diameters. 12. After adopting the above scheme, when using it, first install and connect the second dismantling part 4 and the telescopic rod 1. The operator aligns the end of the square rod 12 with the second connecting cavity 411 of the operating plate 41 and embeds it therein. By utilizing the fitting characteristics of the outer wall of the square rod 12 and the inner wall of the second connecting cavity 411, the accuracy of the connection between the two is ensured, and radial shaking is prevented after installation. Then, the fourth manual bolt 43 is tightened. Since it is installed on the operating plate 41 by thread engagement, when tightening, the end will gradually embed into the first positioning groove 121 of the square rod 12. Through the tight engagement of the two, the operating plate 41 is firmly fixed to the end of the square rod 12, providing stable structural support for subsequent dismantling operations.
[0062] When dealing with small components with protrusions or ring structures (such as clamps for pipe interfaces, fixing rings for small equipment, nails, etc.), the arc-shaped bend 42 can be used for removal. Align the latch 421 of the arc-shaped bend 42 with the protrusion or ring of the component, so that the latch 421 engages with the component. Then, apply tension or torque through the telescopic rod 1. The arc design of the arc-shaped bend 42 can conform to the shape of the component and prevent slippage, while the latch 421 can firmly hold the component. Through the lever principle, the force is transmitted to the component, causing it to loosen or detach from the installation position.
[0063] If small components requiring disassembly of hexagonal bolts or nuts of different specifications are encountered during operation, the hexagonal through holes 412 on the operating plate 41 can be used. Select the corresponding diameter hexagonal through hole 412 according to the size of the bolt or nut, fit it on the bolt or nut, and rotate the operating plate 41 by the telescopic rod 1. Utilize the shape compatibility of the hexagonal through hole 412 with the hexagonal bolt or nut to transmit torque and complete the disassembly. Multiple hexagonal through holes 412 with different diameters can be adapted to various specifications of hexagonal fasteners, eliminating the need to carry multiple wrenches and improving the convenience of operation.
[0064] When it is necessary to replace other dismantling components or storage tools, simply loosen the fourth manual bolt 43 so that its end can be removed from the first positioning groove 121, and the operating plate 41 can be removed from the end of the square rod 12. The operation is simple and quick, further enhancing the flexibility and practicality of the tool.
[0065] Components not described in detail in this article are existing technologies.
[0066] The working principle and usage process of this utility model: Before using the demolition tool of this utility model, the shape of the telescopic rod 1 needs to be adjusted according to the space size and operation requirements. The operator first loosens the second manual bolt 24 of the connecting piece 2 so that its end exits from the second positioning groove 221 of the fixing block 22 and the lock is released. At this time, the fixing block 22 can rotate around the connecting shaft 23, driving the telescopic rod 1 to rotate to the required angle (such as a straight line to extend the operating distance, or an angled shape to adapt to narrow spaces). When a second positioning groove 221 on the fixing block 22 is aligned with the second manual bolt 24, the second manual bolt 24 is tightened so that its end is embedded in the second positioning groove 221. The angle is accurately locked by the equally spaced second positioning grooves 221, ensuring the stability of the tool shape.
[0067] Adjust the length of the telescopic rod 1 according to the working height or distance, loosen the first manual bolt 13 on the square tube 11 so that its end is disengaged from the first positioning groove 121 of the square rod 12, and release the length lock. Since the outer wall of the square rod 12 is tightly fitted to the inner wall of the square tube 11 and both are square structures, there will be no relative rotation during extension and retraction. It can only slide along the axial direction. The operator stretches or retracts the square rod 12 to the appropriate length, aligns it with the first positioning groove 121 at the corresponding position, and tightens the first manual bolt 13 to complete the fixation, ensuring that the length of the rod is stable during operation.
[0068] When installing the first removal component 3, the end of the square rod 12 is inserted into the positioning connection cavity 311 of the first mounting block 31, and the third manual bolt 34 is turned so that its end is inserted into the first positioning groove 121 to achieve a stable connection. If wooden connectors or other components that need to be chopped are to be removed, the blade 321 of the axe 32 is used to chop by transmitting force through the telescopic rod 1. The sharp blade 321 can quickly destroy the component structure. If tightly fitted metal clips or other components that need to be pried, the pry plate 33 is inserted into the gap between the component and the mounting surface. The force is applied by lever principle to separate the component. After the operation is completed, the first removal component 3 can be removed by loosening the third manual bolt 34 and replaced with a first removal component 3 with different removal parts.
[0069] When installing the second removal part 4, insert the end of the square rod 12 into the second connecting cavity 411 of the operating plate 41, and tighten the fourth manual bolt 43 so that its end is inserted into the first positioning groove 121 to complete the fixation. When facing a component with a protruding or ring structure (such as a pipe clamp, nail, etc.), use the slot 421 of the arc-shaped bending part 42 to engage the component. Apply tension or torque through the telescopic rod 1. The arc design fits the shape of the component to prevent slippage, and the slot 421 ensures a firm force application. If it is necessary to disassemble hexagonal bolts or nuts of different specifications, select the corresponding hexagonal through hole 412 on the operating plate 41 to fit the fastener, and rotate the telescopic rod 1 to transmit torque to complete the disassembly. When replacing, loosen the fourth manual bolt 43 to remove the second removal part 4. The second removal part 4 with different removal parts can be replaced.
[0070] Through the coordination of the above steps, the tool can flexibly adjust its form and dismantling method according to different work scenarios, achieving efficient and safe dismantling of various small components, while also being portable and multifunctional.
[0071] Finally, it should be noted that the above description is merely a preferred embodiment of this utility model and is not intended to limit the utility model. Although the utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this utility model should be included within the protection scope of this utility model.
Claims
1. A collapsible small component removal tool, characterized by, include: At least two telescopic rods with adjustable length (1); Connector (2), the telescopic rod (1) is connected by connector (2) to form a foldable structure; and A multi-functional dismantling assembly, at least one set of the multi-functional dismantling assembly is detachably disposed at the end of the telescopic rod (1), and the multi-functional dismantling assembly is provided with at least two dismantling parts for adapting to different small components.
2. The collapsible compact demolition tool of claim 1, wherein: The connector (2) includes: Connecting block (21), the connecting block (21) is provided with two symmetrically distributed mounting ports (211); A fixing block (22) is fixed to the end of the telescopic rod (1) and embedded in the mounting port (211). Multiple second positioning grooves (221) are provided on the fixing block (22) at equal intervals along the circumference. A connecting shaft (23) is fixed to the fixing block (22), and the connecting shaft (23) passes through the connecting block (21) to form a rotating structure; and The second manual bolt (24) is installed on the connecting block (21) by means of thread engagement, and the end of the second manual bolt (24) is embedded in the second positioning groove (221).
3. The collapsible compact demolition tool of claim 1, wherein: The telescopic rod (1) includes: A square tube with a cavity (11); A square rod (12), partially embedded in the square tube (11) to form a telescopic structure, wherein a plurality of first positioning grooves (121) are provided on the square rod (12) at equal intervals along its length; and The first manual bolt (13) is installed on the square tube (11) by means of thread engagement, and the end of the first manual bolt (13) is embedded in the first positioning groove (121).
4. The collapsible compact demolition tool of claim 3, wherein: The outer wall of the square rod (12) is attached to the inner wall of the square tube (11).
5. The collapsible compact demolition tool of claim 3, wherein: The multi-functional dismantling assembly includes a first dismantling component (3), which comprises: The first mounting block (31) is detachably mounted on the end of the telescopic rod (1); An axe plate (32), the axe plate (32) being fixed to the outer wall of the first mounting block (31), and the axe plate (32) having a blade (321) at one end away from the first mounting block (31); and A pry bar (33) is fixed to the outer wall of the first mounting block (31).
6. The collapsible compact demolition tool of claim 5, wherein: The first dismantling component (3) also includes: The third manual bolt (34) is provided in the first mounting block (31), the first mounting block (31) is provided with a positioning connection cavity (311), the end of the square rod (12) is embedded in the positioning connection cavity (311), the third manual bolt (34) is installed on the first mounting block (31) by thread engagement, and the end of the third manual bolt (34) is embedded in the first positioning groove (121).
7. The collapsible compact demolition tool of claim 3, wherein: The multi-functional dismantling assembly includes a second dismantling component (4), which comprises: Operation panel (41), said operation panel (41) being detachably mounted to the end of the telescopic rod (1); and An arc-shaped bend (42) is formed at one end of the operating plate (41) away from the telescopic rod (1), and a latch (421) is provided on the arc-shaped bend (42).
8. The collapsible compact demolition tool of claim 7, wherein: The second dismantling component (4) also includes: The fourth manual bolt (43) is provided in the second connecting cavity (411) of the operating plate (41). The end of the square rod (12) is embedded in the second connecting cavity (411). The fourth manual bolt (43) is installed on the operating plate (41) by thread engagement, and the end of the fourth manual bolt (43) is embedded in the first positioning groove (121).
9. The collapsible compact demolition tool of claim 7, wherein: The operation panel (41) has multiple hexagonal through holes (412) with different diameters.