Geological exploration hammer
By installing hammer bodies and sliding shovel components on the grip side of the geological exploration hammer, the problem that existing geological hammers cannot effectively collect rock blocks is solved, and convenient rock block shoveling and collection is achieved, improving work efficiency.
Patent Information
- Application Number
- CN202421612438.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-09
- Publication Date
- 2025-06-24
- Estimated Expiration
- 2034-07-09
AI Technical Summary
The existing geological hammer structure is single, and it is impossible for users to collect rock blocks dropped on the ground, especially when the rock is in a fragmented state, which makes it inconvenient to pick it up.
A geological exploration hammer is designed, with a hammer body installed on one side of the grip and a sliding groove on the other side. A shovel assembly is arranged in the sliding groove. The shovel assembly includes a slide rod and a shovel body. Through the cooperation of the locking member and the rotating member, the shovel assembly can slide in the slide groove and adjust the length to shovel and collect rock blocks.
Through the design of the shovel assembly, it is possible to shovel falling rock blocks, simplify the collection process, improve work efficiency, and adjust the length of the shovel assembly according to needs to adapt to different situations.
Smart Images

Figure CN223013096U_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the field of survey hammers, and more particularly, to a geological exploration hammer. Background Art
[0002] The geological hammer is one of the basic tools for geological work. One end of the geological hammer head is rectangular or square, and the other end is sharp-edged or flat-wedge-shaped. When in use, generally use the square end to strike the rock to break it into pieces, and use the sharp edge or flat-wedge-shaped end to strike along the rock layer surface to carry out rock layer stripping, which is beneficial to finding fossils and sampling.
[0003] During the geological survey and sampling process, when using a geological survey hammer to strike a rock layer or rock, the rock will fall to the ground. Then, the user needs to pick up the rock that has fallen to the ground and store it in a storage box. However, if the rock falls to the ground in a fragmented state, it will be inconvenient to pick up. And the existing geological hammer has a relatively simple structure and cannot assist the user in collecting the rock blocks that have fallen to the ground. For this reason, we have proposed a geological exploration hammer. Utility Model Content
[0004] To make up for the above deficiencies, the present application provides a geological exploration hammer, aiming to improve the problem of the relatively simple structure of the existing geological hammer.
[0005] The embodiment of the present application provides a geological exploration hammer, including a handle. One end side wall of the handle is connected with a hammer body, and a chute is opened on the other end side wall of the handle. A shovel assembly is slidably arranged in the chute. A locking member is sleeved on the handle. One end of the locking member slidably penetrates through the side wall of the chute and is inserted into the shovel assembly.
[0006] The shovel assembly includes a sliding rod. The sliding rod is slidably arranged in the chute, and one end of the sliding rod is fixedly connected with a shovel body. The locking member is inserted into the sliding rod.
[0007] A plurality of grooves are opened on the outer wall of the handle. The locking member includes a rotating member sleeved on the handle and a plurality of inserting members. The plurality of inserting members respectively slidably penetrate through the plurality of grooves, and one end of each of them slidably penetrates through the side wall of the chute. The rotating member presses the inserting members.
[0008] The rotating member includes a sleeve block fixedly sleeved on the handle. A plurality of installation grooves are opened on the outer wall of the sleeve block, and a sleeve ring is rotatably sleeved on the sleeve block. A plurality of pressing blocks are fixedly installed on the inner wall of the sleeve ring. The plurality of pressing blocks are respectively slidably arranged in the plurality of installation grooves, and a first spring is connected between one end side wall of each of the plurality of pressing blocks and the side wall of the corresponding installation groove. The plurality of pressing blocks respectively press the plurality of inserting members.
[0009] In a specific embodiment, a number of limiting grooves are formed on the side wall of the sliding groove, and a number of limiting blocks are fixedly installed on the outer wall of the sliding rod. The number of the limiting blocks are respectively slidably arranged in the number of the limiting grooves.
[0010] In a specific embodiment, the plug-in member includes a plug rod that slidably penetrates through the groove and the side wall of the sliding groove. A connecting block is fixedly sleeved on the plug rod. A second spring sleeved on the plug rod is fixedly connected between the connecting block and the bottom of the groove. One end of the plug rod is extruded by the extrusion block.
[0011] In a specific embodiment, one end of the plug rod is arranged in an inclined surface, the other end is inserted and arranged with the sliding rod, and the extrusion block is in contact with the inclined surface at one end of the plug rod.
[0012] In a specific embodiment, two groups of jacks are formed on the sliding rod, and each group of jacks is provided with a number of them. A number of the plug rods are inserted into one of the groups of jacks.
[0013] The beneficial effects of the present application: By installing a hammer body on one side of the handle, the hammer body can be used to strike the rock formation or rock. A sliding groove is formed on the other side of the handle, and a shovel assembly is slidably arranged in the sliding groove. When the rock fragments fall to the ground, the shovel assembly on the other side of the handle can shovel up the fragments, so as to facilitate collection into the storage box. In addition, the shovel assembly can slide in the sliding groove, and thus the length of the shovel assembly can be adjusted to facilitate adjustment and use according to needs, making this geological exploration hammer easy to use. BRIEF DESCRIPTION OF THE DRAWINGS
[0014] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the following will briefly introduce the drawings required for the embodiments. It should be understood that the following drawings only show some embodiments of the present application, and therefore should not be regarded as limiting the scope. For those of ordinary skill in the art, without creative efforts, other related drawings can also be obtained based on these drawings.
[0015] Figure 1 is a schematic diagram of the main structure of the geological exploration hammer provided by the embodiment of the present application;
[0016] Figure 2 is a schematic cross-sectional structure view of the side of the handle of the geological exploration hammer provided by the embodiment of the present application;
[0017] Figure 3 is a schematic diagram of the stretching structure of the shovel assembly of the geological exploration hammer provided by the embodiment of the present application;
[0018] Figure 4 is a schematic diagram of the structure of the shovel assembly in the geological exploration hammer provided by the embodiment of the present application;
[0019] Figure 5 Schematic diagram of the handle structure in the geological exploration hammer provided by the embodiment of the present application.
[0020] In the figure: 10 - handle; 110 - groove; 20 - hammer body; 30 - chute; 310 - limit groove; 40 - shovel assembly; 410 - slide bar; 420 - shovel body; 430 - limit block; 50 - locking member; 510 - rotating member; 511 - sleeve block; 512 - mounting groove; 513 - collar; 514 - extrusion block; 515 - first spring; 520 - plug-in member; 521 - plug rod; 522 - connecting block; 523 - second spring; 60 - jack. Specific embodiments
[0021] Next, the technical solutions in the embodiments of the present application will be described with reference to the accompanying drawings in the embodiments of the present application.
[0022] Please refer to Figures 1-5 , the present application provides a geological exploration hammer, including a handle 10. One end side wall of the handle 10 is connected with a hammer body 20, and a chute 30 is opened on the other end side wall thereof. A shovel assembly 40 is slidably arranged in the chute 30. A locking member 50 is sleeved on the handle 10. One end of the locking member 50 slidably penetrates through the side wall of the chute 30 and is inserted into the shovel assembly 40. Specifically, in this embodiment, an anti-slip sleeve is arranged on the handle 10 to increase the frictional resistance between the handle and the user's hand, so that the user can firmly hold the handle 10. Then, during the geological exploration process, hold the handle 10 and use the hammer body 20 to strike the rock formation or rock to obtain rock blocks. The other end of the handle 10 is connected with the shovel assembly 40, which can be used to shovel up the fallen rock blocks for the user to collect the rock blocks.
[0023] Refer to Figure 3 and 4 , the shovel assembly 40 includes a slide bar 410. The slide bar 410 is slidably arranged in the chute 30, and one end thereof is fixedly connected with a shovel body 420. The locking member 50 is inserted into the slide bar 410. When setting, the shovel body 420 can be pulled to make the slide bar 410 slide in the chute 30, and then the slide bar 410 is fixed by the locking member 50 to achieve the purpose of adjusting the overall length. In addition, in this embodiment, the shovel body 420 is not only limited to shoveling up the fallen rock blocks, but can also be used for other purposes such as shoveling soil.
[0024] Refer to Figure 4 and 5A plurality of limit grooves 310 are provided on the side wall of the slide groove 30, and a plurality of limit blocks 430 are fixedly installed on the outer wall of the slide rod 410. The limit blocks 430 are respectively slidably arranged in the plurality of limit grooves 310. In the specific setting, the limit blocks 430 slide in the limit grooves 310 to achieve the purpose of limiting the slide rod 410 and prevent it from rotating in the slide groove 30. At the same time, the limit blocks 430 are evenly distributed on the outer surface of the slide rod 410, which can further enhance the structural strength of the slide rod 410.
[0025] See also Figure 2 The outer wall of the handle 10 is provided with a plurality of grooves 110, the locking member 50 includes a rotating member 510 sleeved on the handle 10 and a plurality of plug-in members 520, the plurality of plug-in members 520 slide through the plurality of grooves 110 respectively, and one end thereof slides through the side wall of the slide slot 30, the rotating member 510 squeezes the plug-in members 520, the rotating member 510 includes a sleeve block 511 fixedly sleeved on the handle 10, the outer wall of the sleeve block 511 is provided with a plurality of mounting grooves 512, and a sleeve ring 513 is rotatably sleeved thereon, a plurality of extrusion blocks 514 are fixedly installed on the inner wall of the sleeve ring 513, and a plurality of extrusion blocks 514 are fixedly installed on the inner wall of the sleeve ring 513. The pressing blocks 514 are respectively slidably arranged in a plurality of mounting grooves 512, and a first spring 515 is connected between the side wall at one end thereof and the corresponding side wall of the mounting groove 512. The plurality of extrusion blocks 514 respectively squeeze a plurality of connectors 520. It should be noted that when the extrusion blocks 514 slide in the mounting grooves 512, they will squeeze the first spring 515. At the same time, when the extrusion blocks 514 move away from the connector 520, the extrusion of the connector 520 will be released, and the connector 520 can be automatically reset to achieve one end of the connector being detached from the slide bar 410, thereby releasing the fixation of the slide bar 410 and moving the slide bar 410.
[0026] See also Figure 2 The connector 520 includes an insertion rod 521 that slides through the groove 110 and the side wall of the slide groove 30, and a connecting block 522 is fixedly sleeved on the insertion rod 521. A second spring 523 sleeved on the insertion rod 521 is fixedly connected between the connecting block 522 and the bottom of the groove 110. The extrusion block 514 squeezes one end of the insertion rod 521. Furthermore, a plurality of insertion rods 521 are inserted into the outer wall of the sliding rod 410 to fix the sliding rod 410. At the same time, the plurality of insertion rods 521 are distributed on the outer wall of the sliding rod 410, so as to jointly provide a supporting force, so that when the shovel body 420 is used, the plurality of insertion rods 521 can jointly withstand the pressure applied by the sliding rod 410.
[0027] See also Figure 2, one end of the insertion rod 521 is provided with an inclined surface, and the other end is inserted into the sliding rod 410. The extrusion block 514 is in contact with the inclined surface at one end of the insertion rod 521. It should be noted that when the extrusion block 514 squeezes one end of the insertion rod 521, at this time, the connecting block 522 on the insertion rod 521 will squeeze the second spring 523. When the extrusion block 514 moves away from the insertion rod 521, the second spring 523 drives the insertion rod 521 to reset, so that one end of the insertion rod 521 moves into the installation groove 512, and then the insertion rod 521 is separated from the sliding rod 410. Then, when the extrusion block 514 slides towards the insertion rod 521 in the installation groove 512, the extrusion block 514 will squeeze the inclined surface of the insertion rod 521, and then the insertion rod 521 moves into the groove 110 to realize that the insertion rod 521 is inserted into the outer wall of the sliding rod 410.
[0028] Refer to Figure 4 , two groups of jacks 60 are provided on the sliding rod 410, and each group of jacks 60 is provided with several. Several insertion rods 521 are inserted into one group of jacks 60. Specifically, the two groups of jacks 60 are respectively arranged on both sides of the sliding rod 410, so that several insertion rods 521 are inserted into the corresponding several jacks 60 to fix the sliding rod 410.
[0029] When this geological exploration hammer is in use: When conducting geological sampling, the handle 10 can be held by hand, and then the hammer body 20 at one end of the handle 10 is used to strike the rock to knock the rock block off the rock. After obtaining a rock block of a certain weight, the fallen rock block can be shoveled up by the shovel body 420 at the other end of the handle 10, and then collected. Further, when the length of the shovel assembly 40 needs to be adjusted, the collar 513 is rotated to make several extrusion blocks 514 slide away from the insertion rod 521, so that several insertion rods 521 are reset and separated from the sliding rod 410, releasing the fixation of the sliding rod 410, and then the shovel body 420 can be pulled to achieve the adjustment purpose.
[0030] It should be noted that the specific model specifications of the hammer body 20 and the shovel body 420 need to be selected according to the actual specifications of the device, etc. The specific selection calculation method adopts the existing technology in this field, so it will not be elaborated in detail.
[0031] The above are only the embodiments of the present application and are not used to limit the protection scope of the present application. For those skilled in the art, various changes and modifications can be made to the present application. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present application shall be included in the protection scope of the present application. It should be noted that similar reference numerals and letters represent similar items in the following drawings. Therefore, once an item is defined in one drawing, it does not need to be further defined and explained in subsequent drawings.
Claims
1. A geological prospecting hammer, characterized in that: The handle (10) comprises a handle (10), a side wall at one end of which is connected to a hammer body (20), and a side wall at the other end of which is provided with a slide groove (30), a shovel assembly (40) being slidably arranged in the slide groove (30), a locking member (50) being sleeved on the handle (10), one end of which slides through the side wall of the slide groove (30) and is plugged into the shovel assembly (40).
2. A geological prospecting hammer according to claim 1, characterized in that: The shovel assembly (40) comprises a slide bar (410) which is slidably disposed in the slide groove (30) and has one end fixedly connected to a shovel body (420). The locking member (50) is plugged into the slide bar (410).
3. A geological prospecting hammer according to claim 2, characterized in that: A plurality of limit grooves (310) are provided on the side wall of the slide groove (30), a plurality of limit blocks (430) are fixedly mounted on the outer wall of the slide rod (410), and the plurality of limit blocks (430) are slidably disposed in the plurality of limit grooves (310), respectively.
4. A geological prospecting hammer according to claim 2, characterized in that: The outer wall of the handle (10) is provided with a plurality of grooves (110), and the locking member (50) comprises a rotating member (510) sleeved on the handle (10) and a plurality of plug-in members (520), wherein the plurality of plug-in members (520) slide through the plurality of grooves (110) respectively, and one end thereof slides through the side wall of the slide groove (30), and the rotating member (510) is arranged to squeeze the plug-in members (520).
5. A geological prospecting hammer according to claim 4, characterized in that: The rotating member (510) comprises a sleeve block (511) fixedly mounted on the handle (10); a plurality of mounting grooves (512) are formed on the outer wall of the sleeve block (511); and a sleeve ring (513) is rotatably mounted on the sleeve block; a plurality of extrusion blocks (514) are fixedly mounted on the inner wall of the sleeve ring (513); the plurality of extrusion blocks (514) are respectively slidably mounted in the plurality of mounting grooves (512); and a first spring (515) is connected between the side wall at one end thereof and the corresponding side wall of the mounting groove (512); and the plurality of extrusion blocks (514) respectively extrudes the plurality of connectors (520).
6. A geological prospecting hammer according to claim 5, characterized in that: The plug-in connector (520) comprises an insertion rod (521) which slides through the groove (110) and the side wall of the slide groove (30); a connecting block (522) is fixedly sleeved on the insertion rod (521); a second spring (523) sleeved on the insertion rod (521) is fixedly connected between the connecting block (522) and the bottom of the groove (110); and the squeezing block (514) squeezes one end of the insertion rod (521).
7. A geological prospecting hammer according to claim 6, characterized in that: One end of the insertion rod (521) is arranged in an inclined surface, and the other end is inserted into the sliding rod (410), and the extrusion block (514) is arranged in contact with the inclined surface of one end of the insertion rod (521).
8. A geological prospecting hammer according to claim 7, characterized in that: Two groups of insertion holes (60) are provided on the sliding rod (410), each group of the insertion holes (60) is provided with a plurality of insertion rods (521) inserted into one group of the insertion holes (60).