Multifunctional tool for geological exploration

By introducing adjustable grip structure and additional functional components into the multifunctional geological hammer, the difficulty in controlling the knocking force caused by the fixed grip length in the prior art is solved, and precise operation and multifunctional geological exploration capabilities are achieved under different terrain.

CN223211322UActive Publication Date: 2025-08-12ZHE JIANG HAI CHUAN DI KUANG KE JI YOU XIAN GONG SI
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Patent Information

Application Number
CN202422085039.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-27
Publication Date
2025-08-12
Estimated Expiration
2034-08-27

AI Technical Summary

Technical Problem

The existing multifunctional geological hammer does not have the function of adjusting the length of the grip and hammer head, which makes it difficult to accurately control the knocking force under different terrains.

Method used

By setting up positioning bolts, positioning rods and positioning holes, the adjustable installation of the grip on the outer wall of the hammer handle is achieved, combining the rubber layer to increase friction and limit structure to ensure the stability of the grip, and meet different geological exploration needs through additional functional mechanisms such as the hammer and the chisel part.

Benefits of technology

Flexible adjustment of grip length is achieved, knock control accuracy is improved under different terrain, and the versatility of the equipment is enhanced, including the ability to crush rocks and peel off rock formations.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a multifunctional tool for geological exploration, and particularly relates to the technical field of tools for geological exploration, which comprises a main body mechanism, an additional function mechanism is fixedly mounted on one side of the main body mechanism, the main body mechanism comprises a hammer handle and a positioning rod, and a grip is slidably mounted on the outer wall of the hammer handle. A reinforcing stem is fixedly mounted in the grip, and a limiting column is fixedly mounted on one side of the reinforcing stem. According to the multifunctional tool for geological exploration, the grip is fixedly installed on the outer wall of the hammer handle through cooperation of the positioning bolt, the positioning rod, the second positioning hole and the first positioning hole, and when the position of the grip on the outer wall of the hammer handle needs to be adjusted, the positioning bolt is rotated to disconnect the connection relation between the positioning bolt and the positioning rod; and then the positioning rod and the positioning bolt are taken out from the interiors of the hammer handle and the grip, the grip can slide on the outer wall of the hammer handle, and after the grip is adjusted to a proper position, the positioning rod and the positioning bolt are inserted into the interiors of the hammer handle and the grip and are fixed.
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Description

Technical Field

[0001] The utility model relates to the technical field of geological prospecting tools, in particular to a multifunctional geological prospecting tool. Background Art

[0002] Geological exploration is a scientific method used to study the Earth's composition, structure, and history, as well as to locate and evaluate subsurface resources. It is primarily used in areas such as mineral resource development, oil and gas extraction, groundwater surveys, engineering geology, environmental geology assessments, and seismic activity monitoring. Geological exploration is crucial to economic development and social development because it helps us rationally utilize Earth's resources while reducing the risks posed by natural disasters.

[0003] The multifunctional geological hammer is a multifunctional tool for geological exploration. It combines the characteristics of multiple tools and is designed to meet the various needs of geologists during field investigations. The design concept of the multifunctional geological hammer is to allow geologists to carry less equipment when working in the field while having the ability to perform multiple tasks.

[0004] Existing multifunctional geological hammers lack the ability to adjust the length of the handle and hammer head. This fixed length can make it difficult to precisely control the force of the strike in varying terrain and space. For example, a longer hammer can be difficult to control in a confined space, while a shorter hammer may not provide sufficient force in open areas, resulting in limited force control. Utility Model Content

[0005] The purpose of this utility model is to provide a multifunctional tool for geological exploration to solve the problems raised in the above background technology.

[0006] To achieve the above-mentioned purpose, the utility model provides the following technical solutions: a multifunctional tool for geological exploration, comprising a main body mechanism, an additional functional mechanism fixedly installed on one side of the main body mechanism, the main body mechanism comprising a hammer handle and a positioning rod, a grip slidably installed on the outer wall of the hammer handle, a reinforcing stem fixedly installed inside the grip, a limiting column fixedly installed on one side of the reinforcing stem, a limiting groove is provided inside the hammer handle, the reinforcing stem is slidably installed inside the hammer handle, the limiting column is slidably installed inside the limiting groove, a plurality of first positioning holes are provided inside the hammer handle, second positioning holes are provided on the upper and lower surfaces of the hammer handle, the positioning rod passes through the second positioning hole and the first positioning hole and is movably installed inside the hammer handle and the grip, a positioning bolt is threadedly connected to the top of the positioning rod, and the positioning bolt passes through the first positioning hole and the second positioning hole and is threadedly connected to the inside of the positioning rod.

[0007] Preferably, a rubber layer is fixedly mounted on the outer wall of the handle, a second guide slot is provided on a side of the first positioning hole away from the limiting slot, and a first guide slot is provided on the top of the positioning rod.

[0008] Preferably, one end of the positioning rod is a regular hexagon, one end of the positioning bolt is a circle, and the shapes of the second positioning holes on the upper and lower sides of the handle match the positioning rod and the positioning bolt respectively.

[0009] Preferably, a hammering part is fixedly mounted on one side of the hammer handle, a chiseling part is fixedly mounted on one side of the hammering part, and a plurality of anti-slip grooves are provided on a side of the hammering part away from the chiseling part.

[0010] Preferably, the additional functional mechanism includes a mounting ring, the mounting ring is fixedly mounted on one side of the handle, a buffer layer is fixedly mounted inside the mounting ring, and a magnifying glass is fixedly mounted inside the buffer layer.

[0011] Preferably, the additional functional mechanism further includes a dust cover, and the dust cover is rotatably mounted on the outer wall of the handle.

[0012] Preferably, a first positioning magnet is fixedly installed inside the dust cover, a third positioning magnet is fixedly installed on a side of the handle close to the mounting ring, and a second positioning magnet is fixedly installed on a side of the handle away from the mounting ring.

[0013] Compared with the prior art, the beneficial effects of the present invention are: the multifunctional geological prospecting tool;

[0014] 1. The grip is fixedly mounted on the outer wall of the hammer handle by means of the cooperation between the provided positioning bolt, the positioning rod, the second positioning hole, and the first positioning hole. When the grip needs to be adjusted on the outer wall of the hammer handle, the connection between the positioning bolt and the positioning rod is disconnected by rotating the positioning bolt. The positioning rod and positioning bolt are then removed from the inside of the hammer handle and the grip. The grip can then be slid on the outer wall of the hammer handle. After adjusting to the appropriate position, the positioning rod and positioning bolt are then inserted into the inside of the hammer handle and the grip and fixed.

[0015] In the above process, the cooperation between the second guide groove and the first guide groove enables the staff to accurately insert the positioning rod into the first positioning hole, and the contact area between the hammer handle and the reinforcing stem is strengthened by the reinforcing stem to ensure the structural strength of the hammer handle and the grip when combined, and then the displacement distance of the grip on the outer wall of the hammer handle is limited by the cooperation between the limiting column and the limiting groove, and the friction of the outer wall of the grip is increased by the rubber layer, which is convenient for the user to hold, and the cooperation between the second positioning hole of the regular hexagonal positioning rod prevents the positioning rod from rotating inside the second positioning hole, which is convenient for the user to thread the positioning rod and the positioning bolt, and the cooperation between the circular positioning bolt and the second positioning hole allows the positioning bolt to rotate freely inside the second positioning hole, which is convenient for the user to thread the positioning rod and the positioning bolt, and the cooperation between the hammering part and the chiseling part facilitates the user to survey the geology, wherein the hammering part is used to knock the rock to break it into smaller pieces for easy collection and analysis, wherein the chiseling part is used to perform fine peeling along the layer of the rock layer, which is helpful for collecting specific types of rock samples, and in this process, the friction of the hammering surface of the hammering part is increased by the anti-slip groove to prevent slipping during hammering;

[0016] 2. Through the coordination between the mounting ring, the buffer layer and the magnifying glass, the device is provided with a magnifying observation function, thereby increasing the versatility of the device. The buffer layer is used to absorb the vibration generated by the device during the process to prevent the magnifying glass from being damaged by vibration. The dust cover covers the upper and lower surfaces of the mounting ring to prevent dust from accumulating on the surface of the magnifying glass, and the opening and closing of the dust cover are flexibly switched by the coordination between the first positioning magnet, the second positioning magnet and the third positioning magnet. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 It is a structural diagram of the utility model;

[0018] Figure 2 It is a partial structural diagram of the main mechanism of the utility model;

[0019] Figure 3 It is a partial structural diagram of the main mechanism of the utility model;

[0020] Figure 4 This is a structural diagram of the additional functional mechanism of the utility model.

[0021] In the figure: 1. Main body; 101. Hammer handle; 102. Grip; 103. Reinforcement stem; 104. Limiting column; 105. Limiting groove; 106. First positioning hole; 107. Second positioning hole; 108. Positioning rod; 109. Positioning bolt; 110. First guide groove; 111. Second guide groove; 112. Rubber layer; 113. Hammering part; 114. Chiseling part; 115. Anti-slip groove; 2. Additional functional mechanism; 201. Mounting ring; 202. Buffer layer; 203. Magnifying glass; 204. Dust cover; 205. First positioning magnet; 206. Second positioning magnet; 207. Third positioning magnet. DETAILED DESCRIPTION

[0022] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0023] See also Figure 1-3The utility model provides a technical solution: a multifunctional tool for geological exploration, comprising a main body mechanism 1, an additional functional mechanism 2 is fixedly installed on one side of the main body mechanism 1, the main body mechanism 1 comprises a hammer handle 101 and a positioning rod 108, a grip 102 is slidably installed on the outer wall of the hammer handle 101, a reinforcing stem 103 is fixedly installed inside the grip 102, a limiting column 104 is fixedly installed on one side of the reinforcing stem 103, a limiting groove 105 is provided inside the hammer handle 101, the reinforcing stem 103 is slidably installed inside the hammer handle 101, the limiting column 104 is slidably installed inside the limiting groove 105, the contact area between the hammer handle 101 and the reinforcing stem 103 is strengthened by the reinforcing stem 103 to ensure that the hammer handle 101 is in a stable state. 1 and the grip 102, and the displacement distance of the grip 102 on the outer wall of the hammer handle 101 is limited by the cooperation between the limiting column 104 and the limiting groove 105. A plurality of first positioning holes 106 are opened inside the hammer handle 101, and second positioning holes 107 are opened on the upper and lower surfaces of the hammer handle 101. The positioning rod 108 passes through the second positioning holes 107 and the first positioning holes 106 and is movably installed inside the hammer handle 101 and the grip 102. The top of the positioning rod 108 is threadedly connected with a positioning bolt 109, and the positioning bolt 109 passes through the first positioning hole 106 and the second positioning hole 107 and is threadedly connected to the inside of the positioning rod 108. The outer wall of the grip 102 is fixedly installed with a rubber layer 112. A second guide slot 111 is provided on the side of the positioning hole 106 away from the limiting slot 105, and a first guide slot 110 is provided on the top of the positioning rod 108. Through the cooperation between the second guide slot 111 and the first guide slot 110, the staff can accurately insert the positioning rod 108 into the first positioning hole 106. One end of the positioning rod 108 is a regular hexagon, and one end of the positioning bolt 109 is round. The shapes of the second positioning holes 107 on the upper and lower sides of the handle 102 respectively match the positioning rod 108 and the positioning bolt 109. Through the cooperation between the second positioning holes 107 of the regular hexagonal positioning rod 108, the positioning rod 108 is prevented from rotating inside the second positioning hole 107, which is convenient for use. The positioning rod 108 and the positioning bolt 109 are connected by threads by personnel, and the positioning bolt 109 can rotate freely inside the second positioning hole 107 through the cooperation between the circular positioning bolt 109 and the second positioning hole 107, which is convenient for users to thread the positioning rod 108 and the positioning bolt 109. A hammering part 113 is fixedly installed on one side of the hammer handle 101, and a chiseling part 114 is fixedly installed on one side of the hammering part 113. A plurality of anti-skid grooves 115 are provided on the side of the hammering part 113 away from the chiseling part 114. The cooperation between the hammering part 113 and the chiseling part 114 makes it convenient for users to survey the geology, and the friction of the hammering surface of the hammering part 113 is increased by the anti-skid grooves 115 to prevent slipping during hammering.

[0024] The specific implementation method is as follows: the grip 102 is fixedly mounted on the outer wall of the hammer handle 101 by the cooperation between the positioning bolt 109, the positioning rod 108, the second positioning hole 107, and the first positioning hole 106. When the grip 102 needs to be adjusted on the outer wall of the hammer handle 101, the connection between the positioning bolt 109 and the positioning rod 108 is disconnected by rotating the positioning bolt 109, and then the positioning rod 108 and the positioning bolt 109 are removed from the inside of the hammer handle 101 and the grip 102. The grip 102 can then be slid on the outer wall of the hammer handle 101. After adjusting to the appropriate position, the positioning rod 108 and the positioning bolt 109 are then inserted into the inside of the hammer handle 101 and the grip 102 and fixed.

[0025] In the above process, the cooperation between the second guide slot 111 and the first guide slot 110 enables the staff to accurately insert the positioning rod 108 into the first positioning hole 106, and strengthen the contact area between the hammer handle 101 and the reinforcing stem 103 by strengthening the hammer handle 101 to ensure the structural strength of the hammer handle 101 and the grip 102 when combined. The displacement distance of the grip 102 on the outer wall of the hammer handle 101 is limited by the cooperation between the limiting column 104 and the limiting slot 105, and the friction force of the outer wall of the grip 102 is increased by the rubber layer 112, which is convenient for the user to hold. The cooperation between the second positioning hole 107 of the regular hexagonal positioning rod 108 prevents the positioning rod 108 from rotating inside the second positioning hole 107, which is convenient for The user threadedly connects the positioning rod 108 and the positioning bolt 109, and through the cooperation between the circular positioning bolt 109 and the second positioning hole 107, the positioning bolt 109 can rotate freely inside the second positioning hole 107, which is convenient for the user to threadedly connect the positioning rod 108 and the positioning bolt 109. The cooperation between the hammer part 113 and the chiseling part 114 is convenient for the user to investigate the geology, wherein the hammer part 113 is used to knock the rock to break it into smaller blocks for easy collection and analysis, wherein the chiseling part 114 is used for fine peeling along the layer of the rock layer, which helps to collect specific types of rock samples. In this process, the anti-slip groove 115 is used to increase the friction of the hammer surface of the hammer part 113 to prevent slipping during hammering.

[0026] See also Figure 4The utility model provides a technical solution: a multifunctional tool for geological exploration, wherein the additional functional mechanism 2 includes a mounting ring 201, which is fixedly mounted on one side of the handle 102, and a buffer layer 202 is fixedly mounted inside the mounting ring 201, and a magnifying glass 203 is fixedly mounted inside the buffer layer 202. The additional functional mechanism 2 also includes a dust cover 204, which is rotatably mounted on the outer wall of the handle 102, and the dust cover 204 covers the upper and lower surfaces of the mounting ring 201 to prevent dust from accumulating on the surface of the magnifying glass 203. A first positioning magnet 205 is fixedly mounted inside the dust cover 204, and a third positioning magnet 207 is fixedly mounted on the side of the handle 102 close to the mounting ring 201, and a second positioning magnet 206 is fixedly mounted on the side of the handle 102 away from the mounting ring 201. The opening and closing of the dust cover 204 can be flexibly switched by the cooperation between the first positioning magnet 205, the second positioning magnet 206, and the third positioning magnet 207.

[0027] The specific implementation method is: through the cooperation between the mounting ring 201, the buffer layer 202, and the magnifying glass 203, the device is provided with the function of magnifying observation, thereby increasing the versatility of the device, wherein the buffer layer 202 is used to absorb the vibration generated by the device during the process to prevent the magnifying glass 203 from being damaged by vibration, and the dust cover 204 covers the upper and lower surfaces of the mounting ring 201 to prevent dust from accumulating on the surface of the magnifying glass 203, and the opening and closing of the dust cover 204 are flexibly switched through the cooperation between the first positioning magnet 205, the second positioning magnet 206, and the third positioning magnet 207.

[0028] Working principle: When using the multifunctional geological prospecting tool, the grip 102 is fixedly mounted on the outer wall of the hammer handle 101 by the cooperation among the positioning bolt 109, the positioning rod 108, the second positioning hole 107, and the first positioning hole 106. When the position of the grip 102 on the outer wall of the hammer handle 101 needs to be adjusted, the connection between the positioning bolt 109 and the positioning rod 108 is disconnected by rotating the positioning bolt 109, and then the positioning rod 108 and the positioning bolt 109 are removed from the inside of the hammer handle 101 and the grip 102. The grip 102 can be slid on the outer wall of the hammer handle 101. After adjusting to the appropriate position, the positioning rod 108 and the positioning bolt 109 are inserted into the inside of the hammer handle 101 and the grip 102 and fixed.

[0029] In the above process, the cooperation between the second guide slot 111 and the first guide slot 110 enables the staff to accurately insert the positioning rod 108 into the first positioning hole 106, and strengthen the contact area between the hammer handle 101 and the reinforcing stem 103 by strengthening the hammer handle 101 to ensure the structural strength of the hammer handle 101 and the grip 102 when combined. The displacement distance of the grip 102 on the outer wall of the hammer handle 101 is limited by the cooperation between the limiting column 104 and the limiting slot 105, and the friction force of the outer wall of the grip 102 is increased by the rubber layer 112, which is convenient for the user to hold. The cooperation between the second positioning hole 107 of the regular hexagonal positioning rod 108 prevents the positioning rod 108 from rotating inside the second positioning hole 107, which is convenient for The user threadedly connects the positioning rod 108 and the positioning bolt 109, and the cooperation between the circular positioning bolt 109 and the second positioning hole 107 allows the positioning bolt 109 to rotate freely inside the second positioning hole 107, which is convenient for the user to threadedly connect the positioning rod 108 and the positioning bolt 109. The cooperation between the hammer part 113 and the chiseling part 114 facilitates the user to inspect the geology, wherein the hammer part 113 is used to strike the rock to break it into smaller pieces for easy collection and analysis, wherein the chiseling part 114 is used to perform fine peeling along the layer of the rock layer, which is helpful for collecting specific types of rock samples. In this process, the anti-slip groove 115 is used to increase the friction of the hammer surface of the hammer part 113 to prevent slipping during hammering;

[0030] Through the cooperation between the mounting ring 201, the buffer layer 202, and the magnifying glass 203, the device is provided with the function of magnifying observation, and the versatility of the device is increased. The buffer layer 202 is used to absorb the vibration generated by the device during the process to prevent the magnifying glass 203 from being damaged by vibration. The dust cover 204 covers the upper and lower surfaces of the mounting ring 201 to prevent dust from accumulating on the surface of the magnifying glass 203, and the opening and closing of the dust cover 204 are flexibly switched through the cooperation between the first positioning magnet 205, the second positioning magnet 206, and the third positioning magnet 207.

[0031] Although the embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and variations may be made to these embodiments without departing from the principles and spirit of the present invention, and the scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A multifunctional tool for geological exploration, comprising a main body (1), an additional functional mechanism (2) fixedly mounted on one side of the main body (1), characterized in that: The main body mechanism (1) comprises a hammer handle (101) and a positioning rod (108); a grip (102) is slidably mounted on the outer wall of the hammer handle (101); a reinforcing stem (103) is fixedly mounted inside the grip (102); a limiting column (104) is fixedly mounted on one side of the reinforcing stem (103); a limiting groove (105) is provided inside the hammer handle (101); the reinforcing stem (103) is slidably mounted inside the hammer handle (101); the limiting column (104) is slidably mounted inside the limiting groove (105); and the hammer handle ( 101) is provided with a plurality of first positioning holes (106), the upper and lower surfaces of the hammer handle (101) are provided with second positioning holes (107), the positioning rod (108) passes through the second positioning holes (107) and the first positioning holes (106) and is movably installed inside the hammer handle (101) and the grip (102), the top of the positioning rod (108) is threadedly connected with a positioning bolt (109), and the positioning bolt (109) passes through the first positioning hole (106) and the second positioning hole (107) and is threadedly connected to the inside of the positioning rod (108).

2. A multifunctional tool for geological exploration according to claim 1, characterized in that: A rubber layer (112) is fixedly mounted on the outer wall of the handle (102), a second guide slot (111) is provided on the side of the first positioning hole (106) away from the limiting slot (105), and a first guide slot (110) is provided on the top of the positioning rod (108).

3. The multifunctional tool for geological exploration according to claim 1, characterized in that: One end of the positioning rod (108) is a regular hexagon, one end of the positioning bolt (109) is circular, and the shapes of the second positioning holes (107) on the upper and lower sides of the handle (102) respectively match the positioning rod (108) and the positioning bolt (109).

4. The multifunctional tool for geological exploration according to claim 1, characterized in that: A hammering portion (113) is fixedly mounted on one side of the hammer handle (101), a chiseling portion (114) is fixedly mounted on one side of the hammering portion (113), and a plurality of anti-slip grooves (115) are provided on a side of the hammering portion (113) away from the chiseling portion (114).

5. The multifunctional tool for geological exploration according to claim 4, characterized in that: The additional functional mechanism (2) comprises a mounting ring (201), the mounting ring (201) being fixedly mounted on one side of the handle (102), a buffer layer (202) being fixedly mounted inside the mounting ring (201), and a magnifying glass (203) being fixedly mounted inside the buffer layer (202).

6. The multifunctional tool for geological exploration according to claim 1, characterized in that: The additional functional mechanism (2) further comprises a dust cover (204), and the dust cover (204) is rotatably mounted on the outer wall of the handle (102).

7. The multifunctional tool for geological exploration according to claim 6, characterized in that: A first positioning magnet (205) is fixedly mounted inside the dust cover (204), a third positioning magnet (207) is fixedly mounted on a side of the handle (102) close to the mounting ring (201), and a second positioning magnet (206) is fixedly mounted on a side of the handle (102) away from the mounting ring (201).