Water bath constant-temperature oscillation component for drug detection

By setting up baffles and a oscillating frame in the water tank, combined with an electric telescopic rod and a heating rod, the detection of the same sample at different frequencies and temperatures, as well as the simultaneous detection of multiple samples, was achieved, thus overcoming the shortcomings of the existing technology.

CN223959540UActive Publication Date: 2026-03-03湖北林亿生物科技有限公司
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Patent Information

Application Number
CN202520333328.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-27
Publication Date
2026-03-03
Estimated Expiration
2035-02-27

AI Technical Summary

Technical Problem

Current technology cannot subject the same sample to constant temperature oscillation in a water bath at different frequencies and temperatures, nor can it simultaneously detect multiple different samples.

Method used

The water tank is divided into two areas by a partition, two oscillation frames are installed, and different frequencies and temperatures are controlled by an electric telescopic rod and a heating rod. The oscillation frequency and temperature are adjusted by a temperature sensor and a controller to enable the detection of the same sample at different frequencies and temperatures, as well as the simultaneous detection of multiple samples.

Benefits of technology

It enables the detection of the same sample at different frequencies and temperatures, and can simultaneously detect multiple different samples, thus improving detection efficiency and flexibility.

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Abstract

The utility model provides a water bath constant-temperature oscillation component for medicine detection, which relates to the technical field of water bath constant-temperature oscillation and comprises an oscillation box, a water tank arranged on the top surface of the oscillation box, a controller arranged on one side of the water tank, a box cover arranged on the top of the oscillation box, two sliding chutes arranged on the inner wall of the water tank and a partition plate arranged inside the water tank. Vibration frames are arranged on the two sides of the partition plate, spring nets are arranged on the tops of the two vibration frames, and the frequency and temperature of the corresponding electric telescopic rods and the heating rods are adjusted through a controller; the two electric telescopic rods with different frequencies enable the two oscillation frames to oscillate back and forth in a water area which is heated by the two separated heating rods and has different temperatures, so that the conditions of the same sample at different frequencies and temperatures can be detected, and a plurality of different samples can be detected at the same time; the defects that the same sample cannot be subjected to water bath constant-temperature oscillation with different frequencies and temperatures, and a plurality of different samples cannot be detected at the same time are overcome.
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Description

Technical Field

[0001] This utility model relates to the field of water bath constant temperature oscillation technology, and in particular to a water bath constant temperature oscillation component for drug testing. Background Technology

[0002] According to the Chinese Publication No. CN214553686U, a water bath constant temperature oscillator includes a base, an oscillation element, a water bath, a heater, and a storage bracket. The water bath is mounted on the base, the oscillation element is mounted inside the base and acts on the storage bracket, and the heater and storage bracket are respectively mounted inside the water bath. The base also includes an insulated water tank, a first pump body, and a second pump body. The insulated water tank is connected to the first pump body, which is connected to the bottom of the water bath via a flexible hose. The second pump body is connected to the flexible hose via a first pipe, and a second pipe is also connected to the second pump body, with one end of the second pipe extending outside the base. The advantages are that it can shorten the heating time, improve experimental efficiency, and allow for rapid water intake and drainage, making operation convenient and labor-saving.

[0003] The above-mentioned and existing technologies only perform water bath constant temperature oscillation at the same frequency on one type of sample, and cannot perform water bath constant temperature oscillation at different frequencies on the same sample, nor can they detect multiple different samples at the same time. Utility Model Content

[0004] The purpose of this invention is to address the shortcomings of existing technologies that cannot subject the same sample to constant temperature oscillation in a water bath at different frequencies and temperatures, nor can they detect multiple different samples at the same time. Therefore, this invention proposes a constant temperature oscillation component for drug testing using a water bath.

[0005] To achieve the above objectives, the present invention adopts the following technical solution: a water bath constant temperature oscillation component for drug testing, comprising an oscillation chamber, a water tank on the top surface of the oscillation chamber, a controller on one side of the water tank, a lid on the top of the oscillation chamber, two sliding grooves on the inner wall of the water tank, a partition inside the water tank, oscillation frames on both sides of the partition, spring nets on the top of the two oscillation frames, two pulleys on both sides of the two oscillation frames, sliding plates on both sides of the partition and the inner wall of the water tank, temperature sensors at the bottom of the two oscillation frames, heating rods outside the two temperature sensors, two electric telescopic rods on the top of the controller, and pins on the surface of the two oscillation frames.

[0006] Preferably, the water tank and the shaking box are integrally formed, and the two slides are evenly arranged on the surface in the middle of the inner wall on both sides of the water tank, and the two slides are parallel.

[0007] Preferably, the sliding plates on both sides of the partition are L-shaped, and the two sliding plates are mirror images of each other with the partition as the center. The two sliding plates are integrally formed with the partition, and both ends of the partition are installed in the sliding groove.

[0008] Preferably, the two sliding plates on the inner wall surface of the water tank are parallel to the sliding plates on both sides of the partition, and the sliding plates on the inner wall of the water tank correspond one-to-one with the sliding plates on both sides of the partition. The four pulleys of the two vibration frames are evenly arranged at each corner of the vibration frame, and the pulleys are all connected to the vibration frame shaft.

[0009] Preferably, both spring meshes are snapped onto the top of the two oscillating frames, and both pins are set on the outer surface of the oscillating frames, with the pins being integrally formed with the oscillating frames.

[0010] Preferably, the controller is mounted on the surface of the vibration chamber, and both of the electric telescopic rods are mounted inside the vibration chamber, with the electric telescopic rods connected to the controller's wiring.

[0011] Preferably, both heating rods and temperature sensors are mounted on the surface of the inner wall of the water tank, and the oscillating frame is aligned with the vertical central axis of the heating rods and temperature sensors. Both the temperature sensors and heating rods are connected to the controller circuit.

[0012] Beneficial effects

[0013] In this invention, a partition is used to divide the water tank into two areas, and two smaller oscillating frames are installed in the two areas separated by the partition. The pins of the two oscillating frames are then locked into the through holes of the inner rods of two electric telescopic rods. The same sample or different samples are respectively locked onto the spring mesh of the two oscillating frames. The controller opens the two electric telescopic rods and the two heating rods. The frequency and temperature of the corresponding electric telescopic rods and heating rods can be adjusted by the controller according to the required temperature and oscillation frequency. The two electric telescopic rods with different frequencies cause the two oscillating frames to oscillate back and forth in the two water bodies heated to different temperatures by the two separate heating rods. This allows for the detection of the same sample at different frequencies and temperatures, and also allows for the detection of multiple different samples at the same time. This solves the shortcomings of not being able to perform constant temperature oscillation of the same sample at different frequencies and temperatures in a water bath, and also the inability to detect multiple different samples at the same time. Attached Figure Description

[0014] Figure 1 This is an isometric drawing of the present invention;

[0015] Figure 2 This is a top view of the present invention;

[0016] Figure 3 For the present utility model Figure 2 Sectional view at point AA;

[0017] Figure 4 For the present utility model Figure 2 Sectional view at BB;

[0018] Figure 5 This is an auxiliary view of a specific embodiment two of this utility model.

[0019] Legend:

[0020] 1. Shaking chamber; 2. Chamber lid; 3. Water tank; 4. Controller; 5. Shaking frame; 6. Spring mesh; 7. Pulley; 8. Baffle; 9. Slide plate; 10. Slide rail; 11. Heating rod; 12. Temperature sensor; 13. Pin; 14. Electric telescopic rod. Detailed Implementation

[0021] To make the technical means, creative features, and achieved objectives and effects of this utility model easier to understand, the present utility model is further described below with reference to specific embodiments and accompanying drawings. However, the following embodiments are merely preferred embodiments of this utility model and not all of them. Other embodiments obtained by those skilled in the art based on the embodiments described in the implementation plan without creative effort are all within the protection scope of this utility model.

[0022] The specific embodiments of this utility model are described below with reference to the accompanying drawings. Specific Implementation Example 1:

[0024] Reference Figure 1-5A water bath constant temperature oscillation component for drug testing includes an oscillation chamber (1), characterized in that: a water tank (3) is provided on the top surface of the oscillation chamber (1), a controller (4) is provided on one side of the water tank (3), a box cover (2) is provided on the top of the oscillation chamber (1), two sliding grooves (10) are provided on the inner wall of the water tank (3), a partition (8) is provided inside the water tank (3), an oscillation frame (5) is provided on both sides of the partition (8), a spring net (6) is provided on the top of the two oscillation frames (5), two pulleys (7) are provided on both sides of the two oscillation frames (5), and the two sides of the partition (8) and the water tank (3) are connected. The inner wall surface is provided with a sliding plate (9), the bottom of the two vibration frames (5) is provided with a temperature sensor (12), the outside of the two temperature sensors (12) is provided with a heating rod (11), the top of the controller (4) is provided with two electric telescopic rods (14), the surface of the two vibration frames (5) is provided with a pin (13), the water tank (3) and the vibration box (1) are integrally formed, the two sliding grooves (10) are evenly set on the surface of the inner wall of the two sides of the water tank (3), and the two sliding grooves (10) are parallel, the sliding plates (9) on both sides of the partition (8) are L-shaped, and the two sliding plates (9) are separated by the partition. (8) For a central mirror setting, the two slide plates (9) are integrally formed with the partition plate (8). Both ends of the partition plate (8) are installed in the slide groove (10). The two slide plates (9) on the inner wall surface of the water tank (3) are parallel to the slide plates (9) on both sides of the partition plate (8), and the slide plates (9) on the inner wall of the water tank (3) correspond one-to-one with the slide plates (9) on both sides of the partition plate (8). The four pulleys (7) of the two vibration frames (5) are evenly set at each corner of the vibration frame (5), and the pulleys (7) are all axially connected to the vibration frame (5). The two spring nets (6) are snapped onto the top of the two vibration frames (5). The two pins (13) are all set on the outer surface of the oscillating frame (5), and the pin (13) is integrally formed with the oscillating frame (5). The controller (4) is installed on the surface of the oscillating box (1). The two electric telescopic rods (14) are installed inside the oscillating box (1), and the electric telescopic rods (14) are connected to the controller (4) by circuit. The two heating rods (11) and the temperature sensor (12) are installed on the surface of the inner wall of the water tank (3), and the vertical central axis of the oscillating frame (5) is aligned with that of the heating rod (11) and the temperature sensor (12). The temperature sensor (12) and the heating rod (11) are connected to the controller (4) by circuit.

[0025] The cover 2 is installed on the top of the shaking chamber 1 and is axially connected to the shaking chamber 1. The cover 2 is used to cover the water tank 3 to prevent the water inside the water tank 3, heated by the heating rod 11, from rapidly losing temperature. The water tank 3 is located on the top surface of the shaking chamber 1 to receive the water source and is used for water bath shaking detection of reagents. When it is necessary to perform water bath constant temperature shaking of the same sample at different frequencies and temperatures or to detect two different samples, the partition 8 can be installed in the two sliding grooves 10 of the water tank 3, dividing the water tank 3 into two areas through the partition 8. Since the two sliding grooves 10 are located in the middle of the inner wall surface on the left and right sides of the water tank 3, the two areas separated by the partition 8 are the same size. Two shaking frames 5 of the same size are installed in the two areas separated by the partition 8 respectively. When the pins 13 on the right side of the two vibrating frames 5 are respectively engaged in the through holes of the inner rods of the two electric telescopic rods 14, both of which are installed inside the vibrating box 1 on the right side of the water tank 3, and the inner rods of the electric telescopic rods 14 penetrate the interior of the water tank 3, with through holes on the surface of the inner rods penetrating the interior of the water tank 3. When the pins 13 of the vibrating frame 5 are engaged in the through holes of the inner rods of the electric telescopic rods 14, the four pulleys 7 of the two vibrating frames 5 respectively abut against the sliding plates 9 on the front and rear inner wall surfaces of the water tank 3 and the sliding plates 9 on both sides of the partition 8, so that when the electric telescopic rods 14 start to extend and retract, they will drive the vibrating frames 5 to move back and forth, thereby completing the vibration. During vibration, the pulleys 7 on the left and right sides of the vibrating frame 5 will respectively abut against the sliding plates 9 on the partition 8 and the sliding plates 9 on the surface of the water tank 3. The friction of the oscillating frame 5 is reduced by sliding the sample on top. During testing, the same or different samples are respectively placed in the spring mesh 6 of the two oscillating frames 5. The spring mesh 6 binds the reagent inside the spring mesh 6 according to its own elasticity, preventing the reagent from falling off during oscillation. After the reagent is installed, the controller 4 opens the two electric telescopic rods 14 and the two heating rods 11. The controller 4 can adjust the frequency and temperature of the corresponding electric telescopic rods 14 and heating rods 11 according to the required temperature and oscillation frequency. When testing the same reagent at different oscillation frequencies and temperatures, the same reagent can be installed on the spring mesh 6 of the two oscillating frames 5 respectively, and the reagent is bound by the spring mesh 6. The controller 4 opens the two electric telescopic rods 14 and the heating rods 11. The telescopic rod 14, two heating rods 11, and two temperature sensors 12 are adjusted and preset at temperature on the controller 4. This allows the two electric telescopic rods 14 and the two heating rods 11 to be set to different telescopic frequencies and heating temperatures. The two heating rods 11 with different heating temperatures will heat the two water bodies separated by the partition 8 to different temperatures. The partition 8 prevents the temperatures of the two water bodies from mixing and also prevents the oscillating frames 5 from interfering with each other. The two temperature sensors 12 will detect the temperatures of the two water bodies separated by the partition 8. Once the water body temperature is lower or higher than the preset temperature of the controller 4, it will be detected by the temperature sensor 12, which will transmit an electrical signal to the controller 4. The controller 4 will then adjust the temperature of the heating rods 11 by decreasing or increasing their power.The temperature of different water bodies is increased or decreased by heating rods 11 at different temperatures, and this cycle is repeated to achieve a constant temperature. Since the pins 13 of the two oscillating frames 5 are both engaged with the through holes of the electric telescopic rods 14, the two electric telescopic rods 14 with different telescopic frequencies will cause the oscillating frames 5 to oscillate back and forth in water bodies of different temperatures. During oscillation, the pulleys 7 of the oscillating frames 5 will slide back and forth on the slide plate 9, thus allowing the same reagent to be tested at different frequencies in a water bath at different temperatures. When testing different reagents simultaneously, simply replace the same reagent in the above steps with a different reagent. This allows for testing the same sample at different frequencies and temperatures, and for testing multiple different samples simultaneously. Specific Implementation Example 2:

[0027] Reference Figure 1-5 A water bath constant temperature oscillation component for drug testing, further based on the basic structure in Specific Embodiment 1, can be modified to address the drawbacks of not needing to test the same sample at different frequencies and temperatures using water bath constant temperature oscillation, and not needing to test multiple different samples simultaneously. In this modification, the partition 8 can be removed from the slide 10, and the two smaller oscillation frames 5 can be replaced with a larger oscillation frame 5. The larger oscillation frame 5 is more than twice the size of the smaller oscillation frames 5, and its surface is provided with two pins 13. The positions of the two pins 13 on the surface of the larger oscillation frame 5 correspond one-to-one with the positions of the two electric telescopic rods 14. Furthermore, the outer surface of the larger oscillation frame 5 is provided with… There are four pulleys 7, and each pulley 7 is axled to one of the corners of the larger oscillating frame 5. When the large oscillating frame 5 is installed, the two pins 13 of the oscillating frame 5 will be locked in the through holes of the inner rods of the two electric telescopic rods 14, and the four pulleys 7 of the oscillating frame 5 will abut against the two sliding plates 9 on the inner wall of the water tank 3. The controller 4 is used to adjust the two electric telescopic rods 14 to the same frequency and the two heating rods 11 to the same temperature. The two electric telescopic rods 14 with the same frequency will drive the large oscillating frame 5 to oscillate back and forth in the water tank 3 heated to the same temperature by the two heating rods 11. When the oscillating frame 5 oscillates back and forth, the four pulleys 7 of the oscillating frame 5 will slide back and forth on the sliding plates 9, thereby reducing the friction of the oscillating frame 5.

[0028] In summary:

[0029] 1. A partition 8 is used to divide the water tank 3 into two areas, and two smaller oscillating frames 5 are installed in the two areas separated by the partition 8. The pins 13 of the two oscillating frames 5 are locked into the through holes of the inner rods of the two electric telescopic rods 14. The same sample or different samples are locked onto the spring mesh 6 of the two oscillating frames 5 respectively. The controller 4 opens the two electric telescopic rods 14 and the two heating rods 11. The controller 4 can adjust the frequency and temperature of the corresponding electric telescopic rods 14 and heating rods 11 according to the required temperature and oscillation frequency. The two electric telescopic rods 14 with different frequencies make the two oscillating frames 5 oscillate back and forth in the two water bodies heated by the two separate heating rods 11 at different temperatures. This allows the same sample to be tested at different frequencies and temperatures, and multiple different samples can be tested at the same time. This solves the shortcomings of not being able to perform constant temperature oscillation of the same sample at different frequencies and temperatures in a water bath, and also not being able to test multiple different samples at the same time.

[0030] In this invention, unless otherwise explicitly specified and limited, "above" or "below" the second feature can include direct contact between the first and second features, or contact between the first and second features through another feature between them. Furthermore, "above," "over," and "on top" of the second feature includes the first feature directly above or diagonally above the second feature, or simply indicates that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature includes the first feature directly below or diagonally below the second feature, or simply indicates that the first feature is at a lower horizontal level than the second feature.

[0031] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely preferred examples and are not intended to limit the utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claimed utility model. The scope of protection of this utility model is defined by the appended claims and their equivalents.

Claims

1. A water bath thermostatic oscillation part for medicine detection, comprising an oscillation box (1), characterized in that: The top surface of the oscillation box (1) is provided with a water tank (3), one side of the water tank (3) is provided with a controller (4), the top of the oscillation box (1) is provided with a box cover (2), the inner wall of the water tank (3) is provided with two sliding grooves (10), the inside of the water tank (3) is provided with a partition plate (8), both sides of the partition plate (8) are provided with an oscillation frame (5), the top of the two oscillation frames (5) is provided with a spring net (6), both sides of the two oscillation frames (5) are provided with two pulleys (7), the surface of both sides of the partition plate (8) and the inner wall surface of the water tank (3) are provided with sliding plates (9), the bottom of the two oscillation frames (5) is provided with temperature sensors (12), the outside of the two temperature sensors (12) is provided with heating rods (11), the top of the controller (4) is provided with two electric telescopic rods (14), the surface of the two oscillation frames (5) is provided with a latch (13).

2. The water bath constant temperature oscillation part for medicine detection according to claim 1, characterized in that: The water tank (3) is integrally formed with the oscillation box (1), the two sliding grooves (10) are evenly arranged on the surface of the inner wall of the two sides of the water tank (3), and the two sliding grooves (10) are in parallel.

3. The water bath constant temperature oscillation part for medicine detection according to claim 1, characterized in that: The sliding plates (9) on both sides of the partition plate (8) are L-shaped, and the two sliding plates (9) are mirror image arranged with the partition plate (8) as the center, the two sliding plates (9) are integrally formed with the partition plate (8), and the two ends of the partition plate (8) are mounted in the sliding grooves (10).

4. The water bath constant temperature oscillation part for medicine detection according to claim 1, characterized in that: The two sliding plates (9) on the inner wall surface of the water tank (3) and the sliding plates (9) on the surface of both sides of the partition plate (8) are in parallel, and the sliding plates (9) on the inner wall of the water tank (3) correspond to the sliding plates (9) on both sides of the partition plate (8) one by one, and the four pulleys (7) of the two oscillation frames (5) are evenly arranged at the corners of the oscillation frames (5), and the pulleys (7) are connected with the oscillation frames (5).

5. The water bath constant temperature oscillation part for medicine detection according to claim 1, characterized in that: The two spring nets (6) are clamped at the top ends of the two oscillation frames (5), the two latches (13) are arranged on the surface outside the oscillation frames (5), and the latches (13) are integrally formed with the oscillation frames (5).

6. The water bath constant temperature oscillation part for medicine detection according to claim 1, characterized in that: The controller (4) is mounted on the surface of the oscillation box (1), the two electric telescopic rods (14) are mounted in the inside of the oscillation box (1), and the electric telescopic rods (14) are in line communication with the controller (4).

7. The water bath constant temperature oscillation part for medicine detection according to claim 1, characterized in that: The two heating rods (11) and temperature sensors (12) are mounted on the surface of the inner wall of the water tank (3), and the oscillation frames (5) are consistent with the vertical central axes of the heating rods (11) and the temperature sensors (12), the temperature sensors (12) and the heating rods (11) are in line communication with the controller (4).