Reconnaissance device for geological engineering investigation and research

By designing an exploration device that integrates protective devices and measuring tools, the problems of insufficient portability, protection, and measurement accuracy have been solved, enabling efficient and precise geological exploration operations.

CN224014366UActive Publication Date: 2026-03-20JIANGSU NANJING GEOLOGY ENG KANCHAYUAN
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-24
Publication Date
2026-03-20

AI Technical Summary

Technical Problem

Existing geological exploration equipment is inadequate in terms of portability, protection, and measurement accuracy, making it difficult to meet the needs of efficient and accurate exploration in complex environments.

Method used

A surveying device including protective and measuring devices was designed. It adopts a hinged upper and lower box, a buckle and hook sealing structure, is equipped with polyurethane foam cushioning material and arc design, and integrates measuring tools such as a high-density electrical resistivity meter to ensure stable transportation and accurate measurement in harsh environments.

Benefits of technology

It improves the portability and protection of the device, reduces equipment damage, enhances measurement accuracy and work efficiency, and ensures personnel safety.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model belongs to the technical field of survey devices, in particular to a survey device for geological engineering survey research, which comprises a protection device and a measuring device, the protection device comprises a lower box body and an upper box body, the lower box body is rotatably connected with the upper box body through a hinge, a hasp is fixedly connected on the side wall of the upper box body, and the measuring device is fixedly connected on the side wall of the upper box body. A hook is arranged on the side wall of the lower box body, a handle is rotatably connected to the center of the lower box body, and a foam plate is embedded in the upper box body. According to the utility model, the lower box body and the upper box body of the protection device are connected through the hinge and are matched with the hasp and the agraffe for sealing, the lifting handle is convenient to carry, the foam plate and the foam seat which are made of polyurethane foam materials can effectively buffer and absorb shock and protect internal equipment, and the positioning seat corresponds to the positioning hole, so that the instrument is conveniently and accurately placed and stabilized; the arc design of the box body enhances the structural strength, guarantees personnel safety, is convenient to clean and maintain, can carry out accurate measurement on the whole, and meets the requirements of geological exploration.
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Description

TECHNICAL FIELD

[0001] The utility model relates to survey device technical field, concretely is a survey device for geological engineering survey research. BACKGROUND

[0002] In the field of geological engineering, whether it is mineral resource exploration, building foundation survey, or geological disaster warning and many other projects, accurate and efficient geological information acquisition is crucial, which makes the survey device for geological engineering survey research emerge as the times require.

[0003] Traditional geological survey methods are often single and simple. In the early stage, geological personnel only rely on simple compasses, geological hammers and other tools for field observation and sampling analysis. Although this method can obtain some basic information such as rock properties and stratum trend, it has very limited information capacity for deep geological structure, hidden geological body and complex geological environment. For example, when looking for underground water sources, it is difficult to accurately locate the position, reserves and flow direction of the water source by relying solely on surface signs and limited manual drilling sampling.

[0004] With the progress of science and technology, some basic measuring instruments have been gradually applied, such as ordinary resistivity measuring equipment. However, the early devices are not perfect in function, and their measurement accuracy is easily affected by environmental factors. For example, in humid and rainy environments, the instrument may be damaged by moisture, which can cause large measurement data deviation. At the same time, they lack effective protection measures, and the bumping and collision during field transportation often damages the instrument, thereby affecting the work progress and data accuracy.

[0005] In addition, the early survey device has serious deficiencies in portability. Due to the scattered components and inconvenient storage, geological workers need to spend a lot of energy to carry and organize the equipment, especially in mountainous areas, jungles and other places with poor transportation. Heavy and complex equipment greatly limits the survey range and efficiency. Moreover, different measuring tools and instruments lack integration, and each has its own system, so workers need to frequently switch operations, which not only increases the operation difficulty, but also easily introduces human error.

[0006] Nowadays, in the face of increasingly complex geological engineering needs, it is urgent to develop a survey device for geological engineering survey research that integrates multi-functional measurement, strong protection and high portability to meet the pursuit of accurate geological exploration and efficient operation. CONTENT OF THE UTILITY MODEL

[0007] (1) Technical problem solved

[0008] In view of the deficiencies of the prior art, the utility model provides a survey device for geological engineering survey research, which solves the problems raised in the above background technology.

[0009] (2) Technical scheme

[0010] The utility model discloses in order to realize above-mentioned purpose specifically adopts following technical scheme:

[0011] A geological engineering investigation research is used investigation device, including protection device and measuring device, the protection device includes lower box and upper box, the lower box is rotated and is connected with the upper box through the hinge, the lateral wall of upper box is fixedly connected with the hasp, the lateral wall of lower box is equipped with the hook, the center of lower box is rotatably connected with the handle, the upper box is inlayed and is installed with the foam board, the lower box is inlayed and is installed with the foam seat, is equipped with the inlaying groove in the foam seat, installs measuring device in the inlaying groove, the one side of foam seat that is located inlaying groove is equipped with tool slot, and the tool slot is used to place measuring tool, the outer wall of upper box is equipped with the positioning hole,

[0012] Measuring device includes the high density electrical method appearance of GDP-32I type, and one side wall of high density electrical method appearance is equipped with charging interface, and the bottom of high density electrical method appearance is equipped with four positioning seats.

[0013] Further, the hook is rotatably lapped on the hasp to seal the upper box and the lower box, and the hook corresponds to the position of the hasp.

[0014] Further, the positioning seat corresponds to the position of the positioning hole.

[0015] Further, the foam material of the foam board and the foam seat is polyurethane foam, which has good buffering performance and can effectively reduce damage to the high-density electrical method appearance and measuring tools when the device is impacted by external force.

[0016] Further, the lower box and the upper box are designed with a circular arc on the inner and outer surfaces.

[0017] (Three) beneficial effects

[0018] Compared with the prior art, the utility model provides a kind of investigation device for geological engineering investigation research, with the following beneficial effects:

[0019] The utility model, by the lower box and upper box of its protection device are connected through hinge, are sealed by matching hasp and hook, handle is convenient to carry, and the foam board and foam seat of polyurethane foam material can effectively buffer and reduce shock, protect internal equipment, positioning seat corresponds to positioning hole, for accurate placement and stable instrument, meanwhile, the circular arc design of box enhances structural strength, guarantees personnel safety, facilitates cleaning and maintenance, overall can accurately measure, meet the demand of geological investigation. BRIEF DESCRIPTION OF DRAWINGS

[0020] Figure 1 It is three-dimensional structure schematic diagram of the utility model;

[0021] Figure 2 It is a side view structure schematic diagram of the utility model;

[0022] Figure 3 It is a measuring device structure schematic diagram of the utility model.

[0023] In the figure: 1, lower box body; 2, upper box body; 3, hinge; 4, buckle; 5, hook; 6, handle; 7, foam board; 8, foam seat; 9, high-density electrical method instrument; 10, tool slot; 11, charging interface; 12, positioning seat; 13, positioning hole. DETAILED DESCRIPTION

[0024] The technical solutions in the embodiments of the utility model will be clearly and completely described below with reference to the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by those skilled in the art without creative labor fall within the protection scope of the utility model.

[0025] EMBODIMENT

[0026] As Figures 1-3 shown, an embodiment of the utility model provides a survey device for geological engineering investigation and research, which comprises a protection device and a measuring device;

[0027] The lower box body 1 and the upper box body 2 in the protection device are rotatably connected through the hinge 3, forming a closable containing space, like a solid shell, which accommodates the measuring device and measuring tools, and is protected from the outside environment such as dust, rain, collision, etc. During transportation and storage, the internal equipment is provided with basic protection.

[0028] The buckle 4 and the hook 5: the hook 5 is rotatably connected on the buckle 4, and the positions correspond, realizing the sealing of the upper box body 2 and the lower box body 1. This structure ensures the relative sealing of the interior of the protection device, prevents external foreign matters from entering, and further protects the measuring device and tools inside, so that they can also be normally used in harsh environments.

[0029] The handle 6: located at the center of the lower box body 1 and rotatably connected, which is convenient for the operator to lift the whole device for carrying. Whether on flat road or in complex field environment, it can facilitate the staff to carry the device and move, improving the portability of the device.

[0030] Foam plate 7 and foam seat 8: made of polyurethane foam material, with good cushioning performance. Foam plate 7 is embedded in upper box 2, foam seat 8 is embedded in lower box 1, and foam seat 8 is provided with an embedded groove for installing the measuring device. When the device is impacted by external force, they can effectively reduce the damage of impact force to high-density resistivity meter 9 and measuring tools, like wearing a layer of "shockproof protective clothing" for the equipment.

[0031] Tool slot 10: located on one side of foam seat 8 in the embedded groove, specially used for placing measuring tools. This design realizes the classified storage of measuring tools and measuring devices, avoids the collision of tools and instruments during storage, and at the same time, facilitates the staff to quickly find the required tools during use, improving work efficiency.

[0032] Positioning hole 13: provided on the outer wall of upper box 2, corresponding to the positioning seat 12 at the bottom of high-density resistivity meter 9. When placing high-density resistivity meter 9 outside the protection device, positioning seat 12 can be accurately inserted into positioning hole 13, realizing quick and accurate positioning, and enabling stable placement.

[0033] GDP-32I type high-density resistivity meter 9 in the measuring device: as the core measuring component, used for resistivity measurement work in geological engineering. By sending current to the underground and collecting potential data at different positions, the resistivity of underground geological bodies is calculated, helping geologists analyze underground geological structure, determine stratum distribution, geological anomaly body position, etc., and provide key data support for geological engineering exploration.

[0034] Charging interface 11: located on one side wall of high-density resistivity meter 9, used for connecting external power supply to charge the instrument. It ensures the power supply of the instrument during long-time work in the field, so that the measurement work can continue without power limit.

[0035] Positioning seat 12: four positioning seats 12 are provided at the bottom of high-density resistivity meter 9, cooperating with positioning hole 13 on the outer wall of upper box 2. When in use, high-density resistivity meter 9 can be placed on upper box 2 through positioning hole 13 and positioning seat 12.

[0036] The working principle of the survey device for geological engineering investigation research is as follows: in use, first, open the protection device composed of the lower box body 1 and the upper box body 2, both are connected by the hinge 3, and the opening is convenient. After opening, take out the high-density electrical method instrument 9 of GDP-32I type from the foam seat 8 inlay slot of the lower box body 1, which is the core of the measuring device. The measuring tool placed in the tool slot 10 of the foam seat 8 is used to cooperate with the high-density electrical method instrument 9 to carry out the geological resistivity measurement work. During measurement, the high-density electrical method instrument 9 sends current to the underground through the electrode, collects the potential data at different positions, and then calculates the resistivity of the underground geological body to analyze the geological structure. When not in use, put the high-density electrical method instrument 9 back into the inlay slot, put the measuring tool into the tool slot 10, then close the upper box body 2, rotate the hook 5 to overlap on the buckle 4, realize the sealing of the protection device, and protect the internal equipment. Moreover, the positioning hole 13 on the outer wall of the upper box body 2 corresponds to the positioning seat 12 at the bottom of the high-density electrical method instrument 9, and the positioning is accurate when placed; the handle 6 connected at the center of the lower box body 1 facilitates carrying, and the foam plate 7 and the foam seat 8 made of polyurethane foam material can buffer and reduce shock during carrying, protecting the instrument and the tool, and the lower box body 1 and the upper box body 2 with circular arc design on the inner and outer surfaces can reduce damage when colliding

[0037] As shown in Figure 1 some embodiments, the hook 5 overlaps on the buckle 4 to seal the upper box body 2 and the lower box body 1, and the hook 5 corresponds to the buckle 4 in position; when the hook 5 is rotated and firmly overlapped on the buckle 4, the upper box body 2 and the lower box body 1 are tightly combined, effectively blocking dust, water vapor and other external impurities from entering the inside of the protection device.

[0038] As shown in Figure 2 some embodiments, the positioning seat 12 corresponds to the positioning hole 13 in position, and when the high-density electrical method instrument 9 is working, the positioning seat 12 is positioned through the positioning hole 13 to stably place the high-density electrical method instrument 9, so that the protection device becomes a stable platform.

[0039] As shown in Figure 1 some embodiments, the foam material of the foam plate 7 and the foam seat 8 is polyurethane foam, which has good buffering performance and can effectively reduce the damage to the high-density electrical method instrument 9 and the measuring tool when the device is impacted by external force.

[0040] As shown in Figure 1 some embodiments, the inner and outer surfaces of the lower box body 1 and the upper box body 2 are designed with circular arcs; during the carrying process, the staff may accidentally touch the box body. If the box body has sharp corners, it is easy to cause scratches and injuries to the staff. The circular arc design eliminates these sharp parts, making the surface of the box body smoother and reducing the risk of injury to the staff, ensuring the safety of the staff.

[0041] It should be pointed out finally that: the above only for the preferred embodiments of the utility model have, and do not for limiting the utility model, although the utility model has been described in detail with reference to the foregoing embodiments, for the person skilled in the art, it still can modify the technical scheme recorded in the foregoing each embodiment, or equivalent replacement to part of technical features. Any modification, equivalent replacement, improvement etc. that is made within the spirit and principle of the utility model, should be included in the protection scope of the utility model.

Claims

1. A geological engineering exploration and research apparatus, comprising a protective device and a measuring device, characterized in that: The protective device includes a lower box (1) and an upper box (2). The lower box (1) and the upper box (2) are rotatably connected by a hinge (3). A buckle (4) is fixedly connected to the side wall of the upper box (2). A hook (5) is provided on the side wall of the lower box (1). A handle (6) is rotatably connected to the center of the lower box (1). A foam board (7) is embedded in the upper box (2). A foam seat (8) is embedded in the lower box (1). An inlay groove is provided in the foam seat (8). A measuring device is installed in the inlay groove. A tool slot (10) is opened on one side of the foam seat (8) located in the inlay groove. The tool slot (10) is used to place measuring tools. A positioning hole (13) is provided on the outer wall of the upper box (2). The measuring device includes a high-density electrical resistivity meter (9) of model GDP-32I. A charging interface (11) is provided on one side wall of the high-density electrical resistivity meter (9), and four positioning seats (12) are provided at the bottom of the high-density electrical resistivity meter (9).

2. The geological engineering exploration and research apparatus according to claim 1, characterized in that: The hook (5) rotates and overlaps on the buckle (4) to seal the upper box (2) and the lower box (1), and the hook (5) and the buckle (4) are in corresponding positions.

3. The geological engineering exploration and research apparatus according to claim 1, characterized in that: The positioning seat (12) corresponds to the positioning hole (13).

4. The geological engineering exploration and research apparatus according to claim 1, characterized in that: The foam material of the foam board (7) and foam seat (8) is polyurethane foam, which has good cushioning performance and can effectively reduce the damage to the high-density electrical resistivity meter (9) and measuring tools when the device is subjected to external impact.

5. The geological engineering exploration and research apparatus according to claim 1, characterized in that: The lower box (1) and the upper box (2) are designed with rounded arcs on their inner and outer surfaces.