Geological hammer for geological exploration

By designing the chute, elastic parts and finger ring structures in the geological hammer for geological exploration, the fatigue and safety problems caused by vibration feedback when holding the hammer in geological exploration are solved, and the effect of reducing vibration and improving the stability of use is achieved.

CN222844053UActive Publication Date: 2025-05-09河南省第六地质大队有限公司
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Patent Information

Application Number
CN202421857853.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-02
Publication Date
2025-05-09
Estimated Expiration
2034-08-02

AI Technical Summary

Technical Problem

During geological survey, when artificial handheld geological hammers hit rocks, the vibration generated is fed back to the hands, causing hand muscles to fatigue and may cause the hammer to slide off, affecting safety.

Method used

A geological hammer for geological exploration was designed, including a geological hammer rod and a hammer head. One side of the hammer rod is equipped with a chute and an elastic member. A finger ring is installed on the elastic member and an elastic buffer is installed on the other side. These structures play a buffering role when vibrating, reducing hand vibration, and restricting hand movement through the finger ring to prevent the hammer from falling off.

Benefits of technology

It effectively reduces vibration on the hands, reduces hand muscle fatigue, improves the stability and safety of use, and prevents the hammer from sliding off.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of geological hammers, and discloses a geological hammer for geological exploration, which comprises a geological hammer rod and a geological hammer head arranged at the end part of the geological hammer rod, a sliding groove is formed in one side of the geological hammer rod, an elastic piece is connected into the sliding groove in a sliding mode, and a finger ring is installed on the elastic piece. And an elastic buffer piece is mounted on the other side of the geological hammer rod. The utility model provides a geological hammer for geological exploration, and solves the problem that the safety of a worker is threatened due to the fact that the geological hammer is easy to slip off from the hand when the grip strength of the hand of the worker is weakened due to fatigue.
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Description

Technical Field

[0001] The utility model relates to the technical field of geological hammers, in particular to a geological hammer for geological exploration. Background Art

[0002] In the process of geological exploration, detailed observation and sampling analysis of rocks are important means of obtaining geological information. As one of the basic tools of geologists, geological hammer plays an indispensable role in rock sampling, crushing, stripping and other work. Geological hammer, also known as hand hammer, most of them have one end in a rectangular or square shape and the other end in a pointed or wedge shape. In areas where sedimentary rocks are developed, one end is often in a crane beak shape. The weight of geological hammers is also divided into light and heavy to meet different work requirements;

[0003] When a geological hammer is used to strike rocks manually, due to the hardness and unevenness of the rocks, large vibrations are often generated and fed back to the hands. This continuous vibration not only causes fatigue of the hand muscles, but also during long working hours, when the worker's hand grip weakens due to fatigue, the geological hammer is easy to slip from the hand, posing a threat to the worker's safety.

[0004] In order to solve the above problems, a geological hammer for geological exploration is proposed in this application. Utility Model Content

[0005] Based on the technical problems existing in the background technology, the utility model proposes a geological hammer for geological exploration.

[0006] The geological hammer for geological exploration provided by the utility model comprises a geological hammer rod and a geological hammer head installed at the end of the geological hammer rod;

[0007] A slide groove is provided on one side of the geological hammer rod, an elastic member is slidably connected in the slide groove, and a finger ring is installed on the elastic member;

[0008] An elastic buffer is installed on the other side of the geological hammer rod.

[0009] Preferably, the elastic member includes a T-shaped slider, a movable rod and a first spring, the T-shaped slider is slidably connected in the slider, a through hole is provided in the T-shaped slider, the movable rod is inserted in the through hole, the finger ring is installed on the top of the movable rod, the first spring is sleeved on the movable rod and is located between the T-shaped slider and the finger ring, and the two ends of the first spring are respectively connected to the T-shaped slider and the finger ring.

[0010] Preferably, the elastic buffer comprises an arc-shaped holding block and a plurality of second springs, the plurality of second springs are installed at intervals on the other side of the geological hammer rod, and the arc-shaped holding block is installed at the ends of the plurality of second springs.

[0011] Preferably, an elastic pressing piece abutting against the outer periphery of the geological hammer rod is installed on the T-shaped sliding block, and the elastic pressing piece is used to limit the position of the elastic piece on the geological hammer rod.

[0012] Preferably, the elastic pressure piece includes a third spring and a pressure block, a slide groove extends from the top of the T-shaped slider, a groove is provided on the side of the T-shaped slider, the third spring is installed on the top of the groove, and the pressure block is installed on the end of the third spring and abuts against the outer periphery of the geological hammer rod.

[0013] The above technical solution of the utility model has the following beneficial technical effects:

[0014] By providing the elastic member, finger ring and elastic buffer member, when conducting geological survey, the worker can pass one of his fingers through the finger ring, and then hold the elastic buffer member on the geological hammer rod, and can knock the rock with the geological hammer head on the geological hammer rod. When the vibration is fed back to the hand, the elastic member and the elastic buffer member can play a buffering role to reduce the vibration of the hand. The structure can limit the hand of the worker through the finger ring to prevent the hammer body from falling off the hand, and the cooperation of the elastic member and the elastic buffer member can effectively reduce the vibration of the hand, thereby improving the use effect. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] Figure 1 The utility model is a schematic diagram of the structure of a geological hammer for geological exploration.

[0016] Figure 2 For this utility model Figure 1 Schematic diagram of the structure of the middle finger ring and the elastic part.

[0017] Figure 3 For this utility model Figure 2 A is an enlarged view of the middle image.

[0018] Figure numerals: 1, geological hammer rod; 2, geological hammer head; 3, elastic member; 31, T-shaped slider; 32, movable rod; 33, first spring; 4, finger ring; 5, elastic buffer; 51, arc-shaped gripping block; 52, second spring; 6, elastic pressure member; 61, third spring; 62, pressure block. DETAILED DESCRIPTION

[0019] In order to make the purpose, technical solution and advantages of the utility model clearer, the utility model is further described in detail below in combination with specific implementation methods and with reference to the accompanying drawings. It should be understood that these descriptions are only exemplary and are not intended to limit the scope of the utility model. In addition, in the following description, the description of well-known structures and technologies is omitted to avoid unnecessary confusion of the concept of the utility model.

[0020] like Figure 1-3 As shown, the geological hammer for geological exploration proposed by the utility model comprises a geological hammer rod 1 and a geological hammer head 2 installed at the end of the geological hammer rod 1, and is characterized in that:

[0021] In this embodiment, a slide groove is provided on one side of the geological hammer rod 1, and an elastic member 3 is slidably connected in the slide groove, and a finger ring 4 is installed on the elastic member 3. The elastic member 3 includes a T-shaped slider 31, a movable rod 32 and a first spring 33. The T-shaped slider 31 is slidably connected in the slide groove, a through hole is provided in the T-shaped slider 31, and the movable rod 32 is inserted in the through hole. The finger ring 4 is installed on the top of the movable rod 32. The first spring 33 is sleeved on the movable rod 32 and is located between the T-shaped slider 31 and the finger ring 4, and the two ends of the first spring 33 are respectively connected to the T-shaped slider 31 and the finger ring 4.

[0022] In this embodiment, an elastic buffer 5 is installed on the other side of the geological hammer rod 1. The elastic buffer 5 includes an arc-shaped gripping block 51 and a plurality of second springs 52, the plurality of second springs 52 are installed at intervals on the other side of the geological hammer rod 1, and the arc-shaped gripping block 51 is installed at the ends of the plurality of second springs 52.

[0023] It should be noted that: when conducting geological surveys, the staff can pass one of their fingers through the finger ring 4, and then hold the arc-shaped holding block 51 on the geological hammer rod 1, and can knock the rock with the geological hammer head 2 on the geological hammer rod 1. When the vibration is fed back to the hand, the second spring 52 between the geological hammer rod 1 and the arc-shaped holding block 51 and the first spring 33 between the T-shaped slider 31 and the finger ring 4 can play a buffering role, thereby reducing the vibration of the hand. The structure can limit the staff's hand through the finger ring 4 to prevent the hammer body from falling off the hand, and the cooperation of the first spring 33 and the second spring 52 can effectively reduce the vibration of the hand, thereby improving the use effect.

[0024] In a specific embodiment, an elastic pressure piece 6 is installed on the T-shaped slider 31 and abuts against the outer periphery of the geological hammer rod 1, and the elastic pressure piece 6 is used to limit the position of the elastic piece 3 on the geological hammer rod 1. The elastic pressure piece 6 includes a third spring 61 and a pressure block 62. A slide groove extends from the top of the T-shaped slider 31, and a groove is provided on the side of the T-shaped slider 31. The third spring 61 is installed on the top of the groove, and the pressure block 62 is installed at the end of the third spring 61 and abuts against the outer periphery of the geological hammer rod 1.

[0025] It should be noted that: in order to facilitate the adjustment of the position of the finger ring 4, the T-shaped slider 31 can be moved in the slide groove provided on the geological hammer rod 1. After moving to the corresponding position, under the action of the third spring 61, the pressure block 62 can be pressed against the outer periphery of the geological hammer rod 1, so that the T-shaped slider 31 can be limited and the position of the finger ring 4 can be located.

[0026] It should be understood that the above specific embodiments of the present invention are only used to illustrate or explain the principles of the present invention, and do not constitute a limitation on the present invention. Therefore, any modifications, equivalent substitutions, improvements, etc. made without departing from the spirit and scope of the present invention should be included in the protection scope of the present invention. In addition, the claims attached to the present invention are intended to cover all changes and modifications that fall within the scope and boundaries of the attached claims, or the equivalent forms of such scope and boundaries.

Claims

1. A geological hammer for geological exploration, comprising a geological hammer rod (1) and a geological hammer head (2) mounted at the end of the geological hammer rod (1), characterized in that: A slide groove is provided on one side of the geological hammer rod (1), an elastic member (3) is slidably connected in the slide groove, and a finger ring (4) is installed on the elastic member (3); An elastic buffer (5) is installed on the other side of the geological hammer rod (1).

2. The geological hammer for geological exploration according to claim 1, characterized in that: The elastic member (3) comprises a T-shaped slider (31), a movable rod (32) and a first spring (33); the T-shaped slider (31) is slidably connected in the slider; a through hole is provided in the T-shaped slider (31); the movable rod (32) is inserted in the through hole; the finger ring (4) is installed at the top end of the movable rod (32); the first spring (33) is sleeved on the movable rod (32) and is located between the T-shaped slider (31) and the finger ring (4); and the two ends of the first spring (33) are respectively connected to the T-shaped slider (31) and the finger ring (4).

3. The geological hammer for geological exploration according to claim 2, characterized in that: The elastic buffer (5) comprises an arc-shaped holding block (51) and a plurality of second springs (52); the plurality of second springs (52) are installed at intervals on the other side of the geological hammer rod (1); and the arc-shaped holding block (51) is installed at the ends of the plurality of second springs (52).

4. The geological hammer for geological exploration according to claim 2, characterized in that: The T-shaped sliding block (31) is provided with an elastic pressing piece (6) which abuts against the outer periphery of the geological hammer rod (1), and the elastic pressing piece (6) is used to limit the position of the elastic piece (3) on the geological hammer rod (1).

5. The geological hammer for geological exploration according to claim 4, characterized in that: The elastic pressure piece (6) comprises a third spring (61) and a pressure block (62); a slide groove extends from the top of the T-shaped slider (31); a groove is provided on the side of the T-shaped slider (31); the third spring (61) is installed at the top of the groove; the pressure block (62) is installed at the end of the third spring (61) and abuts against the outer periphery of the geological hammer rod (1).