Gas tracer analysis device capable of storing pipeline

By designing an auxiliary mechanism, the simultaneous feeding and unloading of multiple sample storage pipelines in the gas tracer analysis device is achieved, solving the problem of cumbersome operation in the existing technology and improving detection efficiency and convenience.

CN224231742UActive Publication Date: 2026-05-12QINGDAO DADI EXCELLENT PETROLEUM TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
QINGDAO DADI EXCELLENT PETROLEUM TECH CO LTD
Filing Date
2025-05-28
Publication Date
2026-05-12

AI Technical Summary

Technical Problem

Existing gas tracer analysis devices are cumbersome to operate during the feeding and unloading process, which affects ease of use and detection efficiency.

Method used

A gas tracer desorption device was designed, comprising a desorber body, an inhalation tube, and an auxiliary mechanism. The auxiliary mechanism enables multiple sets of sample storage pipes to be simultaneously connected to the inhalation tube, thereby achieving synchronous feeding and unloading of multiple sets of sample storage pipes.

Benefits of technology

It simplifies the operation process, shortens the single operation time, improves detection efficiency, reduces the frequency of manual intervention, and prevents cross-contamination.

✦ Generated by Eureka AI based on patent content.

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    Figure CN224231742U_ABST
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Abstract

The utility model discloses a gas tracer analysis device capable of containing a pipeline, and relates to the technical field of gas tracer analysis, the gas tracer analysis device comprises an analysis instrument main body, suction pipes and an auxiliary mechanism, and the top end of the analysis instrument main body is connected with the suction pipes which are distributed at equal intervals. When the gas tracer analysis device capable of storing the pipelines is used, the multiple sets of sample storage pipelines are in butt joint with the suction pipe at the same time through the auxiliary mechanism, then the feeding work of the multiple sets of sample storage pipelines is completed at the same time, the sample storage pipelines do not need to be moved one by one for feeding, the single-time operation time is shortened, and the detection efficiency is improved; and multiple sets of sample storage pipelines can be moved at the same time in the follow-up process to complete discharging work, then synchronous discharging of the multiple pipelines is achieved, the manual intervention frequency is reduced, cross contamination is prevented, and therefore when the gas tracer analysis device capable of storing the pipelines is used, the effect of facilitating feeding and improving the detection efficiency is achieved.
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Description

Technical Field

[0001] This utility model relates to the field of gas tracer analysis technology, specifically a gas tracer analysis device that can accommodate pipelines. Background Technology

[0002] Gas tracers are gases or gaseous substances injected during oil reservoir development to track the flow path, distribution, and extent of fluid spread. Gas tracers are characterized by low density and easy diffusion. Gas tracer analysis devices are key equipment used in oil extraction, environmental monitoring, and other fields to analyze changes in gas composition and concentration.

[0003] When a gas tracer needs to be tested using an analytical device, the analyzer body is first placed on top of the workbench. Then, the sample storage tube containing the gas tracer sample is connected to the bottom of the suction tube. The gas tracer in the sample storage tube is then sequentially sucked into the analyzer body through the suction tube for testing, thereby determining whether the gas tracer is qualified. After testing, the sample storage tube is cleaned, and the tube storage box is opened to place the sample storage tube inside and then stored to prevent loss. However, when loading the gas tracer analytical device, the sample storage tubes must be connected to the suction tube one by one to complete the loading process. The above steps must be repeated when unloading, making the operation cumbersome and inconvenient, thus affecting the use of the gas tracer analytical device. Utility Model Content

[0004] The purpose of this invention is to provide a gas tracer analysis device that can accommodate pipelines, in order to solve the problems mentioned in the background art.

[0005] To achieve the above objectives, this utility model provides the following technical solution: a gas tracer analysis device capable of housing pipelines, comprising an analyzer body, a suction tube, and an auxiliary mechanism. The analyzer body has suction tubes evenly spaced at its top, and sample storage pipelines are connected to the bottom of the suction tubes. A pipeline storage box for housing the sample storage pipeline is installed on one side of the outer wall of the analyzer body. The auxiliary mechanism includes a base, a slide rail, a fixed column, a base, a limiting ring, a lifting seat, a protective box, a turntable, a small bevel gear, a large bevel gear, a threaded rod, a lifting seat, and a transmission rod. The bottom end of the analyzer body slides... The sample storage tube is connected to a base, with slide rails welded to both sides of the base bottom. A fixed column is welded to the center of the top of the base, and the base and the fixed column form an "E" shape. A base is slidably connected to the outer wall of the fixed column, and lifting seats are connected to both sides of the outer wall of the base, with the lifting seats forming a "Z" shape. The fixed column can guide the base to move vertically, and the base can drive the base to move horizontally. A limiting cavity is opened inside the base, and a sample storage tube extends into it. A limiting ring is connected to the center of the outer wall of the sample storage tube, and the bottom end of the outer wall of the limiting ring is connected to the base. The limiting ring can limit the sample storage tube.

[0006] Preferably, the analyzer body has movable grooves on both sides of its bottom end, and slide rails extend into them, the movable grooves can guide the base to move horizontally.

[0007] Preferably, threaded rods are connected to both sides of the outer wall of the base via bearing seats, and a protective box is connected to the top of the threaded rods via bearing seats, and the bottom of the protective box is welded to the base.

[0008] Preferably, a turntable is rotatably connected to the middle of the protective box, and a small bevel gear is mated to one side of the outer wall of the turntable. A large bevel gear is meshed with the outer wall of the small bevel gear, and the interior of the large bevel gear is connected to the bottom of the threaded rod. The small bevel gear can drive the large bevel gear to rotate slowly.

[0009] Preferably, a lifting seat is threadedly connected to the middle of the outer wall of the threaded rod, and a transmission rod is welded to both sides of the top of the lifting seat. The top of the transmission rod is connected to the lifting seat, and the transmission rod can drive the lifting seat to move vertically.

[0010] Preferably, the protective box has limit ports on both sides of its top, and the transmission rod extends into them. The limit ports can guide the transmission rod to move, and the lifting seat and the transmission rod form a "U" shape.

[0011] Compared with the prior art, the beneficial effects of this utility model are as follows: When using the gas tracer analysis device that can accommodate pipelines, multiple sets of sample storage pipelines can be connected to the suction pipe simultaneously through the auxiliary mechanism, thereby completing the feeding work of multiple sets of sample storage pipelines at the same time. There is no need to move the sample storage pipelines one by one for feeding, which shortens the single operation time and improves the detection efficiency. Moreover, multiple sets of sample storage pipelines can also be moved simultaneously to complete the unloading work, thereby realizing the synchronous unloading of multiple pipelines, reducing the frequency of manual intervention, and preventing cross-contamination. Thus, when using the gas tracer analysis device that can accommodate pipelines, it plays a role in facilitating feeding and improving detection efficiency. Attached Figure Description

[0012] Figure 1 This is a left-view stereoscopic structural diagram of the present invention;

[0013] Figure 2 This is a right-side three-dimensional structural diagram of the present invention;

[0014] Figure 3 This is a schematic diagram of the three-dimensional cross-sectional structure of this utility model;

[0015] Figure 4 This is a schematic diagram of the three-dimensional structure of the limiting ring of this utility model;

[0016] Figure 5 This is a three-dimensional sectional view of the protective box of this utility model;

[0017] Figure 6 This is a three-dimensional structural diagram of the base of this utility model;

[0018] Figure 7 This is a three-dimensional structural diagram of the lifting seat of this utility model.

[0019] In the diagram: 1. Analyzer main body; 2. Suction tube; 3. Sample storage pipe; 4. Pipe storage box; 5. Auxiliary mechanism; 501. Base; 502. Slide rail; 503. Fixed column; 504. Base; 505. Limiting ring; 506. Lifting seat; 507. Protective box; 508. Turntable; 509. Small bevel gear; 510. Large bevel gear; 511. Threaded rod; 512. Lifting seat; 513. Transmission rod. Detailed Implementation

[0020] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0021] Please see Figures 1-7 This utility model provides a technical solution: a gas tracer analysis device that can store pipelines, including an analyzer body 1, a suction pipe 2, and an auxiliary mechanism 5. The top of the analyzer body 1 is connected to suction pipes 2 that are evenly spaced, and the bottom of the suction pipes 2 are connected to sample storage pipelines 3. A pipeline storage box 4 for storing sample storage pipelines 3 is installed on one side of the outer wall of the analyzer body 1. The auxiliary mechanism 5 includes a base 501, a slide rail 502, a fixing column 503, a base 504, a limiting ring 505, a lifting seat 506, a protective box 507, a turntable 508, a small bevel gear 509, a large bevel gear 510, a threaded rod 511, a lifting seat 512, and a transmission rod 5. 13. A base 501 is slidably connected to the bottom of the analyzer body 1, and slide rails 502 are welded to both sides of the bottom of the base 501. A fixed column 503 is welded to the middle of the top of the base 501, and the base 501 and the fixed column 503 form an "E" shape. A base 504 is slidably connected to the outer wall of the fixed column 503, and lifting seats 506 are connected to both sides of the outer wall of the base 504. The lifting seats 506 have a "Z" shape. The fixed column 503 can guide the base 504 to move vertically, and the base 501 can drive the base 504 to move horizontally. A limiting cavity is opened inside the base 504, and the sample storage pipe 3 extends into it. A limiting ring 5 is connected to the middle of the outer wall of the sample storage pipe 3. 05, and the bottom end of the outer wall of the limiting ring 505 is connected to the base 504, the limiting ring 505 can limit the sample storage pipe 3; the bottom of the analyzer body 1 has movable grooves on both sides, and the slide rail 502 extends into them, the movable grooves can guide the base 501 to move horizontally; the outer walls of the base 501 are connected to threaded rods 511 through bearing seats on both sides, and the top of the threaded rods 511 is connected to a protective box 507 through a bearing seat, and the bottom end of the protective box 507 is welded to the base 501; the protective box 507 is rotatably connected to a turntable 508 in the middle, and a small bevel gear 509 is mated to one side of the outer wall of the turntable 508, and a large bevel gear 510 is meshed to the outer wall of the small bevel gear 509, and the large bevel gear 510 is meshed to the outer wall of the small bevel gear 509. The inner part of the bevel gear 510 is connected to the bottom of the threaded rod 511. The small bevel gear 509 can drive the large bevel gear 510 to rotate slowly. The middle of the outer wall of the threaded rod 511 is threaded with a lifting seat 512, and the top two sides of the lifting seat 512 are welded with transmission rods 513. The top of the transmission rod 513 is connected to the lifting seat 506. The transmission rod 513 can drive the lifting seat 506 to move vertically. The top two sides of the protective box 507 have limit ports, and the transmission rod 513 extends into them. The limit ports can guide the transmission rod 513 to move. The lifting seat 512 and the transmission rod 513 form a "U" shape. The protective box 507 is symmetrically distributed about the vertical center line of the base 501.

[0022] In practical implementation, please refer to the following when using this gas tracer analysis device that can accommodate pipelines. Figures 4-6First, move the sample storage pipe 3 into the base 504. At this time, the bottom end of the limiting ring 505 is connected to the base 504, thereby limiting the sample storage pipe 3, so that the movement of the base 504 can drive the sample storage pipe 3 to move together.

[0023] See Figures 1-4 Next, move the base 504 so that its two sides are connected to the lifting seat 506. Insert the fixing column 503 into the middle of the base 504, and then push the base 501 so that the base 504 moves into the lower part of the suction pipe 2. During this process, the slide rail 502 slides along the base 501, thereby guiding the base 501 to move horizontally.

[0024] See Figure 2 , Figure 4 , Figure 5 and Figure 7 Manually rotating the turntable 508 drives the small bevel gear 509 to rotate. Since the small bevel gear 509 and the large bevel gear 510 are meshed, the rotation of the small bevel gear 509 will drive the large bevel gear 510 to rotate slowly. Then, the rotation of the large bevel gear 510 will drive the threaded rod 511 to rotate.

[0025] The rotation of the threaded rod 511 will generate a thrust on the lifting seat 512, causing the lifting seat 512 to drive the transmission rod 513 to move upward. Then, the transmission rod 513 moves upward and drives the base 504 to move together. During this process, the protective box 507 guides the transmission rod 513 to move smoothly.

[0026] See Figures 3-5 Then, the lifting seat 506 moves upward, which will generate a thrust on the base 504, causing the base 504 to move upward along with the sample storage pipe 3 until multiple sets of sample storage pipes 3 are simultaneously connected to the suction pipe 2, thereby completing the feeding work of multiple sets of sample storage pipes 3 at the same time. There is no need to move the sample storage pipes 3 one by one for feeding, which shortens the single operation time. Moreover, multiple sets of sample storage pipes 3 can also be moved simultaneously to complete the unloading work. After that, it is only necessary to suck the gas tracer sample in the sample storage pipe 3 into the analyzer body 1 for detection in sequence, thereby realizing the synchronous unloading of multiple pipes, reducing the frequency of manual intervention, preventing cross-contamination, and thus improving detection efficiency.

[0027] In summary, when using this gas tracer analysis device that can store pipelines, the analyzer body 1 is placed on top of the workbench beforehand. Then, the sample storage pipeline 3 containing the gas tracer sample is connected to the bottom of the suction pipe 2. The gas tracer in the sample storage pipeline 3 is then sequentially sucked into the analyzer body 1 through the suction pipe 2 for testing, thereby determining whether the gas tracer is qualified. After the test is completed, the sample storage pipeline 3 is cleaned, and the pipeline storage box 4 is opened to place the sample storage pipeline 3 inside, thus storing the sample storage pipeline 3 to prevent loss. This is existing technology and will not be elaborated on here. The auxiliary mechanism 5 allows multiple sets of sample storage pipelines 3 to be connected to the suction pipe 2 simultaneously, thereby completing the feeding of multiple sets of sample storage pipelines 3 at the same time. It is not necessary to move the sample storage pipelines 3 one by one for feeding, shortening the single operation time and improving the detection efficiency. Moreover, multiple sets of sample storage pipelines 3 can also be moved simultaneously to complete the unloading work, thereby realizing the synchronous unloading of multiple pipelines, reducing the frequency of manual intervention, and preventing cross-contamination. The contents not described in detail in this description are existing technologies known to those skilled in the art.

[0028] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.

Claims

1. A gas tracer analysis device capable of housing pipelines, comprising an analyzer body (1), an intake tube (2), and an auxiliary mechanism (5), wherein the top of the analyzer body (1) is connected to an intake tube (2) distributed at equal intervals, and the bottom of the intake tube (2) is connected to a sample storage pipeline (3), and a pipeline storage box (4) for housing the sample storage pipeline (3) is installed on one side of the outer wall of the analyzer body (1), characterized in that: The auxiliary mechanism (5) includes a base (501), a slide rail (502), a fixed column (503), a base (504), a limiting ring (505), a lifting seat (506), a protective box (507), a turntable (508), a small bevel gear (509), a large bevel gear (510), a threaded rod (511), a lifting seat (512), and a transmission rod (513). The bottom end of the analyzer body (1) is slidably connected to the base (501), and slide rails (502) are welded to both sides of the bottom end of the base (501). A fixed column (503) is welded to the middle of the top end of the base (501), and the base (501) and the fixed column (503) form an "E" shape. The fixed column (503) is slidably connected to the base (504) on its outer wall, and the base (504) is connected to the lifting seat (506) on both sides of its outer wall. The lifting seat (506) has a "Z" shaped structure. The fixed column (503) can guide the base (504) to move vertically. The base (501) can drive the base (504) to move horizontally. The base (504) has a limiting cavity inside, and the sample storage pipe (3) extends into it. The middle of the outer wall of the sample storage pipe (3) is connected to a limiting ring (505), and the bottom end of the outer wall of the limiting ring (505) is connected to the base (504). The limiting ring (505) can limit the sample storage pipe (3).

2. The gas tracer analysis device capable of housing pipelines according to claim 1, characterized in that: The analyzer body (1) has movable grooves on both sides of its bottom end, and the slide rail (502) extends into them. The movable grooves can guide the base (501) to move horizontally.

3. The gas tracer analysis device capable of housing pipelines according to claim 2, characterized in that: The outer walls of the base (501) are connected to threaded rods (511) via bearing seats on both sides, and the top of the threaded rods (511) is connected to a protective box (507) via a bearing seat, and the bottom of the protective box (507) is welded to the base (501).

4. The gas tracer analysis device capable of housing pipelines according to claim 3, characterized in that: The protective box (507) is rotatably connected to a turntable (508) in the middle, and a small bevel gear (509) is connected to one side of the outer wall of the turntable (508). A large bevel gear (510) is meshed with the outer wall of the small bevel gear (509), and the inside of the large bevel gear (510) is connected to the bottom of the threaded rod (511). The small bevel gear (509) can drive the large bevel gear (510) to rotate slowly.

5. The gas tracer analysis device capable of housing pipelines according to claim 4, characterized in that: The threaded rod (511) is threadedly connected to a lifting seat (512) in the middle of its outer wall, and a transmission rod (513) is welded to both sides of the top of the lifting seat (512). The top of the transmission rod (513) is connected to the lifting seat (506), and the transmission rod (513) can drive the lifting seat (506) to move vertically.

6. The gas tracer analysis device capable of housing pipelines according to claim 5, characterized in that: The protective box (507) has limit openings on both sides of its top, and the transmission rod (513) extends into them. The limit openings can guide the transmission rod (513) to move. The lifting seat (512) and the transmission rod (513) have a "U" shaped structure.