Geological hammer for geological mineral exploration

By designing a geological hammer with detachable attachment blocks and modular counterweights, the problems of inflexibility and inconvenience caused by the fixed weight of traditional geological hammers have been solved. This allows for flexible adjustment of force and weight, improving work efficiency and safety.

CN223493184UActive Publication Date: 2025-10-31CHINA GEOLOGICAL SURVEY MILITARY-CIVILIAN INTEGRATED GEOLOGICAL SURVEY CENT
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Patent Information

Application Number
CN202422924404.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-29
Publication Date
2025-10-31
Estimated Expiration
2034-11-29

AI Technical Summary

Technical Problem

Traditional geological hammers have a fixed weight and cannot be adjusted according to operational needs, which limits the striking force, affects operational flexibility and efficiency, is inconvenient to carry, and can easily lead to fatigue and health problems with prolonged use.

Method used

The design features detachable attachments and modular counterweights, combined with a carbon fiber hammer handle and a titanium alloy hammer head, allowing for flexible adjustment of weight and force. The attachments are detachable for storage, and the carbon fiber hammer handle has a built-in storage cavity, enhancing its versatility.

Benefits of technology

It improves the applicability and flexibility of geological hammers, increases work efficiency, reduces carrying burden, lowers labor intensity, and enhances the tool's versatility and safety.

✦ Generated by Eureka AI based on patent content.

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Abstract

The geological hammer comprises a hammer body and a carbon fiber hammer handle, a sharp hammer head and a titanium alloy hammer head are arranged at the top and the bottom of the hammer body respectively, a first additional block and a second additional block are arranged on the two sides of the hammer body respectively, groove bodies are formed in the first additional block and the second additional block respectively, and the groove bodies are connected with the carbon fiber hammer handle. A groove is formed in the upper portion of the hammer body, balancing weights are evenly arranged in the groove, a carbon fiber hammer handle is installed at one end of the hammer body through an installation base, a groove is annularly formed in the carbon fiber hammer handle, a rubber sleeve is arranged on the outer side of the groove in a sleeving mode, and anti-skid grooves are evenly formed in the rubber sleeve. A user can flexibly adjust the weight of the geological hammer according to actual working requirements such as geological hardness and exploration depth, so that the striking force is adjusted, the applicability and the flexibility of the geological hammer are remarkably enhanced, geologists can quickly adapt to and accurately master the optimal striking force when facing different geological environments, and the working efficiency is improved. And the working efficiency is greatly improved.
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Description

Technical Field

[0001] This utility model relates to the field of geological hammer technology, specifically a geological hammer used for geological and mineral exploration. Background Technology

[0002] In conventional geological and mineral exploration practices, the geological hammer plays an indispensable and crucial role as a key tool for geologists in field operations. However, through in-depth research and detailed analysis of existing traditional geological hammers, this study reveals several design flaws that, to some extent, restrict the efficiency and accuracy of geological exploration work. Specifically, the weight of traditional geological hammers is fixed and cannot be flexibly adjusted according to actual operational needs. This design flaw limits the striking force during use, making it difficult to adapt to geological strata of varying hardness, thus affecting operational flexibility. Furthermore, the fixed weight easily leads to fatigue for geologists during prolonged use, reducing work efficiency and potentially impacting their health. In addition, traditional geological hammers are inconvenient to carry. Due to their large size, they are quite cumbersome to carry in the field, especially in complex terrain, increasing the burden on geologists and potentially interfering with the carrying and use of other necessary tools. Utility Model Content

[0003] The purpose of this invention is to provide a geological hammer for geological and mineral exploration to solve the problems mentioned in the background art.

[0004] To achieve the above objectives, this utility model provides the following technical solution: a geological hammer for geological and mineral exploration, comprising a hammer body and a carbon fiber hammer handle. The top and bottom of the hammer body are respectively provided with a pointed hammer head and a titanium alloy hammer head, and the two sides of the hammer body are respectively provided with an auxiliary block one and an auxiliary block two. The auxiliary block one and the auxiliary block two are provided with grooves inside, and counterweights are evenly arranged inside the grooves. The carbon fiber hammer handle is mounted on one end of the hammer body through a mounting base. The carbon fiber hammer handle is provided with a storage cavity inside, and a groove is provided in a ring on the carbon fiber hammer handle. A rubber sleeve is fitted on the outside of the groove, and anti-slip grooves are evenly arranged on the rubber sleeve.

[0005] Preferably, the hammer body, the pointed hammer head, and the titanium alloy hammer head are integrally formed, and the tip of the pointed hammer head is also made of titanium alloy material.

[0006] Preferably, both sides of the hammer body are provided with docking slots, and one side of each of the additional block one and additional block two is provided with a connecting block that matches the docking slot. A fastening bolt is provided on the outside of the docking slot. The additional block one and additional block two can be detachably installed on the inside of the docking slot of the hammer body through the connecting block.

[0007] Preferably, both ends of the inner side of the groove are provided with snap-fit ​​grooves, and the inner walls of the snap-fit ​​grooves are provided with anti-slip pads. The counterweight can be detachably installed on the inner side of the snap-fit ​​groove.

[0008] Preferably, sealing caps are installed at the openings of both the first and second auxiliary blocks, and a rubber block for compressing the counterweight is provided on the inner side of the sealing cap.

[0009] Preferably, the top end of the carbon fiber hammer handle is provided with a connecting stud, which is detachably installed on the inner side of the mounting base, and the mounting base is provided with a second fastening bolt, and the connecting stud is provided with a threaded hole that matches the second fastening bolt.

[0010] Preferably, the top end of the carbon fiber hammer handle is provided with a plug that matches the storage cavity, and one side of the carbon fiber hammer handle is provided with a belt ring via a hanging ring.

[0011] Compared with the prior art, the beneficial effects of this utility model are as follows: This geological hammer for geological and mineral exploration, through the external attachment block and the modular counterweight block set inside the attachment block, allows users to flexibly adjust the weight of the geological hammer according to actual work needs, such as geological hardness, exploration depth, and other conditions, thereby adjusting the striking force. This significantly enhances the applicability and flexibility of the geological hammer, enabling geologists to quickly adapt to different geological environments, accurately grasp the optimal striking force, and greatly improve work efficiency. At the same time, when not in use, the size of the geological hammer can be reduced by removing some or all of the counterweight blocks, making it easy to carry and effectively reducing the physiological and psychological burden on geologists.

[0012] Secondly, in terms of structural design, this utility model adopts a detachable structure for the handle and hammer head, which optimizes the overall structure of the geological hammer and facilitates the quick replacement of damaged or worn parts by the user, reducing maintenance costs and repair time. In addition, the carbon fiber hammer handle has a storage cavity inside, which is convenient for storing a series of practical tools, including multi-functional knives, screwdrivers, etc. The integration of these tools significantly improves the versatility of the geological hammer and the convenience of field operations.

[0013] Furthermore, in terms of material selection, this invention uses titanium alloy to manufacture the hammerhead, which has excellent hardness and wear resistance, enabling it to adapt to various harsh geological conditions and effectively extending the service life of the geological hammer. The hammer handle is made of carbon fiber, which is lightweight and high-strength, reducing the overall weight while ensuring the stability and durability of the geological hammer during operation.

[0014] Finally, in terms of safety design, this utility model adopts a rubber grip, anti-slip texture or groove in the handle, which significantly enhances the stability of the geological hammer when it is held in the hand and reduces the risk of accidental injury caused by slipping.

[0015] In summary, this utility model demonstrates significant beneficial effects in improving work efficiency, reducing labor intensity, enhancing tool versatility, and improving product wear resistance, durability, and safety. These advantages not only highlight its technological innovation but also reflect its practical value, making a significant contribution to the development of the geological and mineral exploration field. Attached Figure Description

[0016] Figure 1 This is a top view of the unfolded structure of this utility model;

[0017] Figure 2 This is a side view of the structure of this utility model;

[0018] Figure 3 This is a bottom view of the structure of this utility model;

[0019] Figure 4 This is a schematic diagram of the internal structure of the additional block of this utility model;

[0020] Figure 5 This is a schematic diagram of the internal structure of the sealing cap of this utility model;

[0021] In the diagram: 1. Hammer body; 2. Additional block one; 3. Additional block two; 4. Sealing cap; 5. Connecting slot; 6. Connecting block; 7. Mounting base; 8. Connecting stud; 9. Hanging ring; 10. Ring; 11. Groove; 12. Storage cavity; 13. Plug; 14. Carbon fiber hammer handle; 15. Rubber sleeve; 16. Anti-slip groove; 17. Titanium alloy hammer head; 18. Pointed hammer head; 19. Fastening bolt one; 20. Rubber block; 21. Connecting groove; 22. Counterweight; 23. Anti-slip pad; 24. Fastening bolt two; 25. Groove body. Detailed Implementation

[0022] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of the present utility model without creative effort are within the scope of protection of the present utility model.

[0023] Please see Figure 1-5 An embodiment of this utility model is provided: a geological hammer for geological and mineral exploration, including a hammer body 1 and a carbon fiber hammer handle 14. The top and bottom of the hammer body 1 are respectively provided with a pointed hammer head 18 and a titanium alloy hammer head 17, and the two sides of the hammer body 1 are respectively provided with an auxiliary block 1 2 and an auxiliary block 2 3. The interior of the auxiliary block 1 2 and the auxiliary block 2 3 is provided with a groove 25, and the interior of the groove 25 is uniformly provided with counterweights 22.

[0024] The counterweight 22 is made of high-strength metal alloy materials, such as aluminum alloy or stainless steel alloy. These materials are not only of moderate weight, but also have excellent wear resistance and corrosion resistance, ensuring that the counterweight 22 maintains stable performance during long-term use.

[0025] One end of the hammer body 1 is fitted with a carbon fiber hammer handle 14 via a mounting base 7. The carbon fiber hammer handle 14 has a storage cavity 12 inside, and a groove 11 is provided in an annular shape on the carbon fiber hammer handle 14. A rubber sleeve 15 is fitted on the outside of the groove 11, and anti-slip grooves 16 are evenly provided on the rubber sleeve 15.

[0026] The carbon fiber hammer handle 14 enhances stability during handheld operation, reduces the risk of accidental injury due to slippage, and also reduces the damage to the human body caused by vibration during operation.

[0027] The hammer body 1, the pointed hammer head 18, and the titanium alloy hammer head 17 are integrally formed, and the tip of the pointed hammer head 18 is also made of titanium alloy.

[0028] With excellent strength and shear resistance, ensuring the stability and safety of the connection, the tip of the titanium alloy hammer head 18 has higher hardness and wear resistance, enabling it to adapt to harsher working environments and improve service life.

[0029] Both sides of the hammer body 1 are provided with docking slots 5, and one side of the auxiliary block 1 2 and the auxiliary block 2 3 are provided with connecting blocks 6 that match the docking slots 5. Fastening bolts 19 are provided on the outside of the docking slots 5. The auxiliary blocks 1 2 and the auxiliary blocks 2 3 can be detachably installed on the inside of the docking slots 5 of the hammer body 1 through the connecting blocks 6.

[0030] Ensure the rapid assembly and disassembly of additional blocks 1 and 2 and additional blocks 2 and 3 with hammer body 1, while maintaining the stability and safety of the overall structure.

[0031] Both ends of the inner side of the groove 25 are provided with snap-fit ​​grooves 21, and the inner wall of the snap-fit ​​grooves 21 is provided with anti-slip pads 23. The counterweight 22 can be detachably installed on the inner side of the snap-fit ​​grooves 21.

[0032] The counterweight 22 can be quickly inserted or removed according to actual work needs to achieve precise weight adjustment.

[0033] Both the openings of the auxiliary block 1 2 and the auxiliary block 2 3 are fitted with sealing caps 4, and the inner side of the sealing caps 4 is provided with rubber blocks 20 for compressing the counterweight block 22.

[0034] The top of the carbon fiber hammer handle 14 is provided with a connecting stud 8, which can be detachably installed on the inside of the mounting base 7. The mounting base 7 is provided with a second fastening bolt 24, and the connecting stud 8 is provided with a threaded hole that matches the second fastening bolt 24.

[0035] The top of the carbon fiber hammer handle 14 is provided with a plug 13 that matches the storage cavity 12, and a belt ring 10 is provided on one side of the carbon fiber hammer handle 14 via a hanging ring 9.

[0036] In this embodiment, based on geological hardness, exploration depth, and other conditions, the connecting blocks 6 of the auxiliary blocks 1 and 2 are inserted downwards along the mating groove 5 of the hammer body 1, and their positions are fixed using fastening bolts 19. As needed, corresponding counterweights 22 are added or removed from the locking groove 21 of the groove 25, and the groove 25 is locked using the sealing cap 4. The position of the counterweights 22 is fixed using rubber blocks 20, allowing for flexible adjustment of the weight of the hammer body 1. This enables geologists to quickly adapt to different geological environments, accurately control the optimal striking force, and significantly improve work efficiency. The carbon fiber hammer handle 14 is connected via connecting bolts... The column 8 is connected to the mounting base 7 and fixed in position by fastening bolt 24, enabling quick splicing of the carbon fiber hammer handle 14 and the hammer body 1. In addition, the carbon fiber hammer handle 14 has a storage cavity 12 inside, which is convenient for storing a series of practical tools, including multi-functional knives, screwdrivers, etc. The carbon fiber hammer handle 14 is made of carbon fiber material, which is lightweight and high-strength, reducing the overall weight while ensuring the stability and durability of the geological hammer during operation. The rubber sleeve 15 and anti-slip groove 16 on the outside of the carbon fiber hammer handle 14 enhance the stability of the carbon fiber hammer handle 14 when it is held by hand, reducing the risk of accidental injury caused by slipping.

[0037] Obviously, the embodiments described above are only some embodiments of this utility model, and not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort should fall within the protection scope of this utility model.

[0038] It should be noted that the terminology used herein is for the purpose of describing particular embodiments only and is not intended to limit the exemplary embodiments according to this application. As used herein, the singular form is intended to include the plural form as well, unless the context clearly indicates otherwise. Furthermore, it should be understood that when the terms "comprising" and / or "including" are used in this specification, they indicate the presence of features, steps, operations, devices, components, and / or combinations thereof.

[0039] It should be noted that the terms "first," "second," etc., used in the specification, claims, and accompanying drawings of this application are used to distinguish similar objects and are not necessarily used to describe a specific 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 in sequences other than those illustrated or described herein.

[0040] The above are merely preferred embodiments of this utility model and are not intended to limit the scope of this utility model. Various modifications and variations can be made to this utility model by those skilled in the art. Any modifications, equivalent substitutions, or improvements made within the spirit and principles of this utility model should be included within the protection scope of this utility model.

Claims

1. A geological hammer for geological and mineral exploration, characterized in that: The hammer includes a hammer body (1) and a carbon fiber hammer handle (14). The top and bottom of the hammer body (1) are respectively provided with a pointed hammer head (18) and a titanium alloy hammer head (17). The hammer body (1) is provided with an auxiliary block one (2) and an auxiliary block two (3) on both sides. The auxiliary block one (2) and the auxiliary block two (3) are provided with a groove (25) inside. The groove (25) is provided with a counterweight (22) evenly arranged inside. One end of the hammer body (1) is mounted with a carbon fiber hammer handle (14) through a mounting base (7). The carbon fiber hammer handle (14) is provided with a storage cavity (12) inside. The carbon fiber hammer handle (14) is provided with a groove (11) in a ring. A rubber sleeve (15) is provided on the outside of the groove (11). The rubber sleeve (15) is provided with anti-slip grooves (16) evenly arranged on it.

2. A geological hammer for geological and mineral exploration according to claim 1, characterized in that: The hammer body (1), the pointed hammer head (18), and the titanium alloy hammer head (17) are integrally formed, and the tip of the pointed hammer head (18) is also made of titanium alloy material.

3. A geological hammer for geological and mineral exploration according to claim 1, characterized in that: Both sides of the hammer body (1) are provided with docking slots (5), and one side of the additional block 1 (2) and the additional block 2 (3) are provided with connecting blocks (6) that match the docking slots (5). The outer side of the docking slots (5) is provided with fastening bolts 1 (19). The additional blocks 1 (2) and the additional blocks 2 (3) can be detachably installed inside the docking slots (5) of the hammer body (1) through the connecting blocks (6).

4. A geological hammer for geological and mineral exploration according to claim 1, characterized in that: Both ends of the inner side of the groove (25) are provided with snap-fit ​​grooves (21), and the inner wall of the snap-fit ​​grooves (21) is provided with anti-slip pads (23). The counterweight (22) can be detachably installed on the inner side of the snap-fit ​​grooves (21).

5. A geological hammer for geological and mineral exploration according to claim 1, characterized in that: Both the openings of the first additional block (2) and the second additional block (3) are fitted with sealing caps (4), and the inner side of the sealing caps (4) is provided with rubber blocks (20) for squeezing the counterweight (22).

6. A geological hammer for geological and mineral exploration according to claim 1, characterized in that: The top end of the carbon fiber hammer handle (14) is provided with a connecting stud (8), which can be detachably installed on the inner side of the mounting base (7). The mounting base (7) is provided with a second fastening bolt (24), and the connecting stud (8) is provided with a threaded hole that matches the second fastening bolt (24).

7. A geological hammer for geological and mineral exploration according to claim 1, characterized in that: The top end of the carbon fiber hammer handle (14) is provided with a plug (13) that matches the storage cavity (12), and a belt ring (10) is provided on one side of the carbon fiber hammer handle (14) via a hanging ring (9).