Automated integrated machine for the collection and storage of rock core elements

DE202025103336U1Active Publication Date: 2025-09-11YAN YU LINFEN CITY +1
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Patent Information

Application Number
DE202025103336
Authority / Receiving Office
DE · DE
Patent Type
Utility models
Current Assignee / Owner
Filing Date
2025-06-13
Publication Date
2025-09-11
Estimated Expiration
2035-06-30

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Abstract

An automated integrated machine for collecting and storing rock core elements, comprising an analyzer main body (1), characterized in that a data display (101) is arranged on one side of the analyzer main body (1), the lower part of the analyzer main body (1) is connected to a handle (2), the interior of the handle (2) is formed as a hollow space, and a handle support mechanism is arranged inside the handle (2);wherein the handle support mechanism comprises compression springs (201), a connecting plate (202), connecting rods (203), a finger ring (204), and a guide rod (205), wherein ends of the compression springs (201) are fixedly connected to the inner wall of the handle (2), the connecting plate (202) is fixedly connected to the other ends of the compression springs (201), the connecting plate (202) is movably arranged within the handle (2), ends of two connecting rods (203) are fixedly connected to both ends of the connecting plate (202), the other ends of the two connecting rods (203) each penetrate outwardly through the handle (2), both ends of the finger ring (204) are fixedly connected to the outer ends of the two connecting rods (203), the guide rod (205) is fixedly connected to the interior of the handle (2), and the connecting plate (202) is slidably connected to the surface of the guide rod (205);
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Description

Technical area

[0001] The present utility model belongs to the technical field of geological exploration and relates in particular to an automated integrated machine for the collection and storage of rock core elements. State of the art

[0002] Core element extraction typically refers to the process of extracting elemental data from core samples obtained by drilling during geological exploration. A core is a representative rock sample taken from deeper underground and is commonly used to investigate the composition, structure, physical properties, and other geological features of the subsurface rock layers. Core element extraction is an important step in core element analysis, which aims to understand the distribution and content of various chemical elements in the rock to further evaluate resource potential, environmental status, and other geological information. Core element extraction typically utilizes analytical instruments to assist in data acquisition.The collected data is then automatically saved on the device.

[0003] Among them, the portable analyzer is a type of instrument for acquiring rock core information. When personnel hold the instrument for a long time or the environment is humid, sweaty hands or a moist handle surface may reduce the friction between the palm and the handle. This results in a less stable grip between the personnel's palm and the handle of the instrument, which may cause the instrument to slip. This affects the stability during operation and may lead to deviations in the acquisition of elemental information of the rock core. Content of the utility model

[0004] The purpose of this utility model is to provide an automated, integrated machine for collecting and storing rock core elements. A finger ring fixes the operator's palm on the surface of the analyzer's handle, ensuring the operator maintains a stable grip during operation. This reduces hand slippage due to fatigue or sweating and can significantly improve operating stability, preventing operating errors due to hand instability.

[0005] The technical solutions applied by the present utility model are as follows.

[0006] An automated integrated machine for collecting and storing rock core elements comprises an analyzer main body. A data display is arranged on one side of the analyzer main body. The lower part of the analyzer main body is connected to a handle. The interior of the handle is designed as a hollow space. A handle support mechanism is arranged within the handle.The handle assist mechanism includes compression springs, a connecting plate, connecting rods, a finger ring, and a guide rod, wherein ends of the compression springs are fixedly connected to the inner wall of the handle, the connecting plate is fixedly connected to the other ends of the compression springs, the connecting plate is movably arranged within the handle, ends of two connecting rods are fixedly connected to both ends of the connecting plate, the other ends of the two connecting rods each penetrate outward through the handle, both ends of the finger ring are fixedly connected to the outer ends of the two connecting rods, the guide rod is fixedly connected to the inside of the handle, and the connecting plate is slidably connected to the surface of the guide rod.

[0007] Preferably, one side of the analyzer main body is rigidly connected to a U-shaped frame. The data display is arranged in the inner region of the U-shaped frame. A protective plate is arranged in the inner region of the U-shaped frame. The lower parts of both sides of the protective plate are rigidly connected with sliders. Rail guides are formed on both sides of the inner wall of the U-shaped frame. The sliders are arranged to slide in the rail guides.

[0008] Preferably, a positioning pin is mounted on the top of the inner portion of the U-shaped frame. Positioning holes are formed on the upper and lower portions of one side of the protective plate. The positioning pin is cooperatively connected to the positioning holes.

[0009] Preferably, the upper and lower parts of the inner wall of the handle are firmly connected to auxiliary elements. The two connecting rods are arranged in the inner area of ​​each of the auxiliary elements.

[0010] Preferably, telescopic elements are movably arranged within the compression springs. The ends of the telescopic elements are firmly connected to the inner wall of the handle. The other ends of the telescopic elements are firmly connected to one side of the connecting plate.

[0011] Preferably, a pull ring is firmly attached to the outer side of the finger ring. Both the pull ring and the finger ring are made of elastic material.

[0012] Preferably, finger grooves are formed on one side of the handle. The number of finger grooves is four. The finger grooves are evenly distributed along one side of the handle.

[0013] The technical effect of the present utility model is as follows.

[0014] In the present utility model, when using the analyzer main body, the user can first pull the finger ring outward by pulling the pull ring. As the finger ring moves outward, it pulls the connecting plate outward through the connecting rods. As the connecting plate moves outward, it simultaneously compresses the compression springs. The user then grasps the handle with their hand and slowly releases the hand pulling the finger ring. This allows the connecting plate and the connecting rods to move in the opposite direction under the restoring force of the compression springs. As the connecting plate moves, it can move stably on the surface of the guide rod. At the same time, the connecting plate can retract the finger ring into the handle. Under the spring force of the compression springs, the finger ring presses against the surface of the user's fingers.This allows the fingers to grip the handle firmly. This mechanism effectively overcomes problems with slippery hands, ensures a stable grip, and adapts to complex working environments. It ensures normal and stable operation of the instrument under various environmental conditions.

[0015] In the present utility model, after using the analyzer main body, the user can pull down the protective plate. The protective plate then securely pulls down the sliders within the rail guides. This effectively covers and protects the data display. The protective plate can effectively protect the data display from damage caused by dust, dirt, scratches, and other external influences. Especially during transportation, the protective plate prevents possible damage to the data display caused by accidental collisions or external forces. Description of the attached drawings Fig. 1 is a three-dimensional schematic diagram of the overall structure of an automated integrated machine for collecting and storing rock core elements according to the present utility model; Fig. 2 is a three-dimensional side view of the automated integrated machine for collecting and storing rock core elements according to the present utility model; Fig. 3 is a three-dimensional sectional view of the front side of the present utility model; and Fig. 4 is an exploded three-dimensional view of positioning holes and a positioning pin of the present utility model.

[0016] In the figures, the following reference numerals represent the corresponding components: 1-Analyzer main body; 101-Data display; 2-Handle; 201-Compression spring; 202-Connecting plate; 203-Connecting rod; 204-Finger ring; 205-Guide rod; 301-U-shaped frame; 302-Protective plate; 303-Slider; 304-Rail guide; 401-Positioning pin; 402-Positioning hole; 5-Auxiliary member; 6-Telescopic member; 7-Pull ring; 8-Finger recess. Examples of implementation

[0017] To more clearly illustrate the objectives and advantages of the present utility model, the present utility model is explained in more detail below using exemplary embodiments. It should be noted that the following text merely serves to describe one or more specific embodiments of the present utility model and does not constitute a strict framework for the scope of protection of the specific claims of the present utility model.

[0018] As in Fig. As shown in Figures 1-4, an automated integrated machine for collecting and storing rock core elements comprises an analyzer main body 1. A data display 101 is arranged on one side of the analyzer main body 1. The lower part of the analyzer main body 1 is connected to a handle 2. The interior of the handle 2 is formed as a hollow space. A handle support mechanism is arranged within the handle 2.The handle assist mechanism includes compression springs 201, a connecting plate 202, connecting rods 203, a finger ring 204, and a guide rod 205, wherein ends of the compression springs 201 are fixedly connected to the inner wall of the handle 2, the connecting plate 202 is fixedly connected to the other ends of the compression springs 201, the connecting plate 202 is movably arranged within the handle 2, ends of two connecting rods 203 are fixedly connected to both ends of the connecting plate 202, the other ends of the two connecting rods 203 each penetrate outward through the handle 2, both ends of the finger ring 204 are fixedly connected to the outer ends of the two connecting rods 203, the guide rod 205 is fixedly connected to the interior of the handle 2, and the connecting plate 202 is slidably connected to the surface of the guide rod 205.Through the combined use of the grip support mechanism, the finger ring 204 can be moved under the spring force of the compression springs 201, and the finger ring 204 fixes the user's palm to the surface of the handle 2. This ensures that the operator maintains a stable grip posture during operation, reduces hand slippage due to fatigue or sweating, and at the same time reduces the risk of dropping the instrument due to an unstable grip, thereby reducing the possibility of damage to the instrument.

[0019] As in Fig. 1-3, one side of the analyzer main body 1 is fixedly connected to a U-shaped frame 301. The data display 101 is arranged in the inner region of the U-shaped frame 301. A protective plate 302 is arranged in the inner region of the U-shaped frame 301. The lower parts of the two sides of the protective plate 302 are fixedly connected with sliders 303. Rail guides 304 are formed on both sides of the inner wall of the U-shaped frame 301. The sliders 303 are slidably arranged in the rail guides 304. The design of the sliding protective plate 302 allows the data display 101 to be completely covered when not in use. This prevents the data display 101 from remaining unprotected for a long time, keeping the external appearance of the analyzer main body 1 clean.At the same time, the protective plate 302 can effectively prevent foreign matter, dust, and dirt from directly impacting the screen, ensuring the clarity and functionality of the data display 101 and reducing maintenance and cleaning costs.

[0020] As in Fig. As shown in Figure 4, a positioning pin 401 is mounted on the top of the inner portion of the U-shaped frame 301. Positioning holes 402 are formed on the upper and lower portions of one side of the protective plate 302. The positioning pin 401 is cooperatively connected to the positioning holes 402. The cooperative use of the positioning pin 401 and the positioning holes 402 enables additional positioning of the protective plate 302. This prevents the protective plate 302 from sliding down and obscuring the data display 101 during use of the analyzer main body 1. This ensures that the analyzer main body 1 can display data normally, improving the user experience.

[0021] As in Fig. As shown in Figure 3, the upper and lower parts of the inner wall of the handle 2 are rigidly connected to auxiliary elements 5. The two connecting rods 203 are each arranged in the inner region of the auxiliary elements 5. When the connecting rods 203 and the connecting plate 202 are pulled and moved, the auxiliary elements 5 can additionally guide and position the connecting rods 203 during the parallel movement. This prevents the connecting rods 203 from deviating during movement due to a lack of guidance and ensures their stability in the working state.

[0022] As in Fig. As shown in Figure 3, telescopic elements 6 are movably arranged in the compression springs 201. Ends of the telescopic elements 6 are firmly connected to the inner wall of the handle 2. The other ends of the telescopic elements 6 are firmly connected to one side of the connecting plate 202. The telescopic elements 6 improve the spring characteristics of the compression springs 201, making them more stable over longer periods of operation. This ensures permanently optimal spring properties and prevents the compression springs 201 from developing deformations under sustained compressive or tensile loads, which would impair their spring characteristics.

[0023] As in Fig. 2 and Fig. As shown in Figure 3, a pull ring 7 is firmly connected to the outer side of the finger ring 204. Both the pull ring 7 and the finger ring 204 are made of elastic material. When the finger ring 204 is pulled outward, force assistance can be provided via the pull ring 7, allowing the user to pull the finger ring 204 more comfortably. At the same time, this arrangement provides a better gripping point and enables more efficient force transmission, which reduces finger fatigue and increases operating comfort and user-friendliness. The elastic finger ring 204 reduces the pressure on the operator's fingers and positions the user's fingers evenly and comfortably on the surface of the handle 2.

[0024] As in Fig. 2 and Fig.As shown in Figure 3, finger grooves 8 are formed on one side of the handle 2. The number of finger grooves 8 is four. The finger grooves 8 are evenly distributed on one side of the handle 2. When grasping the handle 2, the fingers can be positioned in the finger grooves 8, respectively, ensuring more stable finger positioning during gripping and effectively preventing slippage. During use, this arrangement results in a firmer grip of the handle 2 and the analyzer main body 1, significantly reducing operational errors or discomfort due to slipping or instability.

[0025] The operation of the present utility model is as follows. When using the analyzer main body 1, the user can first pull the finger ring 204 outward by pulling the pull ring 7. As the finger ring 204 moves outward, it pulls the connecting plate 202 outward through the connecting rods 203. As the connecting plate 202 moves outward, it simultaneously compresses the compression springs 201. The user then grasps the handle 2 with their hand and slowly releases the hand pulling the finger ring 204. This allows the connecting plate 202 and the connecting rods 203 to move in the opposite direction under the restoring force of the compression springs 201. As the connecting plate 202 moves, it can move stably on the surface of the guide rod 205. At the same time, the connecting plate 202 can retract the finger ring 204 into the handle 2.Under the spring force of the compression springs 201, the finger ring 204 presses against the surface of the user's fingers. This allows the fingers to firmly grip the handle 2. This mechanism can effectively overcome problems with slippery hands, ensure a stable grip, and adapt to complex working environments. It ensures normal and stable operation of the instrument under various environmental conditions. The device described in this utility model can be considered with reference to existing product brands and models, in particular the Bruker S1 TITAN model.

[0026] The above describes only the preferred embodiments of the present utility model. It should be emphasized that numerous improvements and refinements can be made by the average engineer in the engineering field without departing from the basic principles of the present utility model, which also fall within the scope of the present utility model. Structures, devices, and operating methods not specifically described and explained in the present utility model are implemented according to customary methods in the industry, unless specifically explained and limited.

Claims

[1] An automated integrated machine for collecting and storing rock core elements, comprising an analyzer main body (1), characterized bythat a data display (101) is arranged on one side of the analyzer main body (1), the lower part of the analyzer main body (1) is connected to a handle (2), the interior of the handle (2) is formed as a hollow space, and a handle support mechanism is arranged inside the handle (2);wherein the handle support mechanism comprises compression springs (201), a connecting plate (202), connecting rods (203), a finger ring (204), and a guide rod (205), wherein ends of the compression springs (201) are fixedly connected to the inner wall of the handle (2), the connecting plate (202) is fixedly connected to the other ends of the compression springs (201), the connecting plate (202) is movably arranged within the handle (2), ends of two connecting rods (203) are fixedly connected to both ends of the connecting plate (202), the other ends of the two connecting rods (203) each penetrate outwardly through the handle (2), both ends of the finger ring (204) are fixedly connected to the outer ends of the two connecting rods (203), the guide rod (205) is fixedly connected to the interior of the handle (2), and the connecting plate (202) is slidably connected to the surface of the guide rod (205); [2] The automated integrated machine for collecting and storing rock core elements according to claim 1, characterized by that one side of the analyzer main body (1) is fixedly connected to a U-shaped frame (301), the data display (101) is arranged in the inner region of the U-shaped frame (301), a protective plate (302) is arranged in the inner region of the U-shaped frame (301), the lower parts of the two sides of the protective plate (302) are fixedly connected to sliders (303), rail guides (304) are formed on both sides of the inner wall of the U-shaped frame (301), and the sliders (303) are slidably arranged in the rail guides (304). [3] The automated integrated machine for collecting and storing rock core elements according to claim 2, characterized bythat a positioning pin (401) is mounted on the top of the inner portion of the U-shaped frame (301), positioning holes (402) are formed on the upper part and the lower part of one side of the protective plate (302), and the positioning pin (401) is cooperatively connected to the positioning holes (402). [4] The automated integrated machine for collecting and storing rock core elements according to claim 1, characterized by that the upper part and the lower part of the inner wall of the handle (2) are firmly connected to auxiliary elements (5), and the two connecting rods (203) are each arranged in the inner region of the auxiliary elements (5). [5] The automated integrated machine for collecting and storing rock core elements according to claim 1, characterized bythat telescopic elements (6) are movably arranged in the compression springs (201), ends of the telescopic elements (6) are firmly connected to the inner wall of the handle (2), and the other ends of the telescopic elements (6) are firmly connected to one side of the connecting plate (202). [6] The automated integrated machine for collecting and storing rock core elements according to claim 1, characterized by that a pull ring (7) is firmly connected to the outer side of the finger ring (204), and both the pull ring (7) and the finger ring (204) are made of elastic material. [7] The automated integrated machine for collecting and storing rock core elements according to claim 1, characterized by that finger recesses (8) are formed on one side of the handle (2), the number of finger recesses (8) is four, and the finger recesses (8) are evenly distributed on one side of the handle (2).