Multifunctional constant-temperature oscillation box

By introducing clamping and observation components into the constant temperature shaking chamber, the problem of traditional constant temperature shaking chambers being unable to adapt to different samples is solved, enabling convenient clamping and real-time observation of different samples, thus improving the accuracy of experiments and the stability of the equipment.

CN223620368UActive Publication Date: 2025-12-02SHANGHAI CELL THERAPY GROUP CO LTD +1
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Patent Information

Application Number
CN202422876198.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-25
Publication Date
2025-12-02
Estimated Expiration
2034-11-25

AI Technical Summary

Technical Problem

Traditional constant temperature shaking chambers lack convenient sample clamping and observation methods, making it difficult to adapt to experimental samples of different sizes and shapes, thus affecting the flexibility and accuracy of experimental operations.

Method used

The design incorporates slides, clamping components, and observation components, including clamp bases, telescopic parts, clamping arms, and cameras, to enable convenient clamping and real-time observation of samples of different shapes and sizes. A balancing component is also included to ensure the stability of the equipment.

Benefits of technology

It improves the accuracy and safety of experiments, enhances the versatility and flexibility of equipment, reduces experimental errors, and ensures the reliability of experimental results and the service life of equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a multifunctional constant-temperature oscillation box, which comprises an oscillation box main body, a console is arranged on one side of the oscillation box main body, an oscillation objective table is arranged in the oscillation box main body, a clamping assembly is arranged on the oscillation objective table, the clamping assembly comprises a clamp seat, a telescopic piece is arranged in the clamp seat, and the telescopic piece is connected with the oscillation objective table. Two symmetrical clamping arms extending out of the clamp seat are arranged on the telescopic piece, the clamping arms are elastic arc-shaped plates, clamping plates are arranged at the top ends of the two clamping arms, the clamping plates are rubber arc-shaped plates, and a positioning plate in butt joint with the oscillation objective table is arranged at the bottom of the clamp seat. By designing the clamping assembly which comprises a clamp base, a telescopic piece, a clamping arm and a clamping plate, effective fixing of culture flasks of different shapes and sizes is achieved, the clamping arm is an elastic arc-shaped plate, the clamping plate is a rubber arc-shaped plate, and due to the design, enough clamping force is provided, and it is guaranteed that an experimental sample cannot be damaged in the clamping process.
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Description

Technical Field

[0001] This utility model belongs to the technical field of cell digestion equipment, and in particular relates to a multifunctional constant temperature shaking box. Background Technology

[0002] In experimental research in fields such as biology, medicine, and chemistry, constant-temperature shaking chambers are widely used as an important experimental device in cell culture, sample dissolution, and chemical reactions. Traditional constant-temperature shaking chambers typically have temperature control and shaking functions, but often lack convenient sample clamping and observation methods, which to some extent limits the flexibility of experimental operations and the accuracy of experimental results.

[0003] Specifically, most existing temperature-controlled shaking chambers use fixed sample racks to hold experimental samples, such as culture flasks. However, these fixed sample racks are not only inconvenient to operate and difficult to adapt to experimental samples of different sizes and shapes, but also lack observation methods, making it impossible for researchers to observe the dynamic changes of the experimental samples in real time, thus affecting the accuracy and efficiency of the experiment. Summary of the Invention

[0004] The purpose of this invention is to address the problems existing in the prior art by providing a multifunctional constant temperature shaking chamber. It aims to achieve convenient clamping and observation of experimental samples by designing structures such as slides, clamping components, and observation components, while improving the accuracy and safety of the experiment.

[0005] To achieve the above objectives, the utility model adopts the following technical solution: a multifunctional constant temperature shaking chamber, including a shaking chamber body, a control console on one side of the shaking chamber body, a shaking stage inside the shaking chamber body, a clamping assembly on the shaking stage, the clamping assembly including a clamp seat, a telescopic member inside the clamp seat, two symmetrical clamping arms extending out of the clamp seat on the telescopic member, the clamping arms being elastic arc-shaped plates, a clamping plate at the top of each of the two clamping arms being a rubber arc-shaped plate, and a positioning plate at the bottom of the clamp seat docking with the shaking stage.

[0006] By designing a clamping assembly, including a clamp base, telescopic components, clamping arms, and clamping plates, effective fixation of culture flasks of different shapes and sizes is achieved. The clamping arms are elastic arc-shaped plates, and the clamping plates are rubber arc-shaped plates. This design not only provides sufficient clamping force but also ensures that the experimental samples are not damaged during clamping. At the same time, the positioning plate at the bottom of the clamp base docks with the oscillation stage, ensuring the stability of the clamping assembly during oscillation.

[0007] Optionally, the upper surface of the clamp seat has two coaxial symmetrical sliding grooves. The telescopic member includes a bidirectional screw that passes through the symmetrical sliding grooves from the side wall of the clamp seat. A knob block is provided at one end of the bidirectional screw located on the side wall of the clamp seat. A movable block that is slidably connected to the symmetrical sliding groove is threaded onto the surface of the bidirectional screw and the surface of the two symmetrical sliding grooves. The bottom ends of the two clamping arms are respectively fixed on the two movable blocks.

[0008] By introducing a bidirectional screw and moving blocks, the clamping arm spacing can be flexibly adjusted. A knob allows users to easily rotate the bidirectional screw, driving the two moving blocks to slide within grooves, thereby adjusting the distance between the two clamping arms. This design not only improves the applicability of the clamping assembly but also makes the clamping process simpler and faster.

[0009] Optionally, multiple clamping assemblies are provided, with different diameters of the clamping seats for different clamping assemblies, while all clamping assemblies have the same diameter of positioning plate. Providing clamping seats of various diameters allows the clamping assemblies to be suitable for experimental samples of different sizes. Simultaneously, the identical diameter of the positioning plate in all clamping assemblies ensures the stability and interchangeability of the clamping assemblies on the oscillation stage. This design improves the versatility and flexibility of the multifunctional thermostatic shaker.

[0010] Optionally, the fixture seat sidewall is provided with an observation component, which includes an observation arm disposed on the sidewall of the fixture seat, and a camera aligned with the center of the fixture seat at the other end of the observation arm. The introduction of the observation component allows the user to monitor the state of the experimental sample in real time. With the camera aligned with the center of the fixture seat, changes in the experimental sample can be clearly captured. This design is particularly important for experiments requiring long-term oscillation, as it allows the user to observe the experimental progress without opening the shaking chamber.

[0011] Optionally, an alarm component is also included. This component comprises a sensor array housed inside the main body of the shaking chamber and an alarm light on the inclined surface of the control panel. The sensor array includes one or more of a temperature sensor, a humidity sensor, and a speed sensor. The alarm component design enhances the safety and reliability of the multi-functional constant-temperature shaking chamber. The sensor array can monitor parameters such as temperature and humidity within the shaking chamber in real time. If these parameters exceed preset ranges, the alarm light will illuminate, alerting the user to take timely action. This design helps prevent experimental failures or equipment damage.

[0012] Optionally, the top surface of the oscillating stage is provided with multiple positioning slots that fit the positioning plate. The positioning slots allow the positioning plate to be more stably fixed on the oscillating stage, thereby improving the stability of the clamping assembly during oscillation. This design helps reduce experimental errors and improve the accuracy of experimental results.

[0013] Optionally, the bottom of the oscillation chamber body is provided with a balancing component, which includes an electronic level located at the center of the bottom of the oscillation chamber body and four electric actuators respectively arranged around the bottom of the oscillation chamber body. The movable end of the electric actuator is provided with a hemispherical rubber pad.

[0014] The balancing mechanism ensures the stability of the multi-functional thermostatic shaker during operation. An electronic bubble level monitors the shaker's horizontal position in real time; if tilting is detected, an electric actuator adjusts the height of the hemispherical rubber pad to restore the shaker to a horizontal position. This design helps reduce the impact of vibration on experimental results, improving experimental accuracy and reliability.

[0015] Optionally, a cover can be detachably installed on the top of the oscillation chamber body, and an installation groove adapted to the cover is provided on the top of the oscillation chamber body.

[0016] The enclosure's design allows the multi-functional constant temperature shaking chamber to be easily closed when not in use, preventing dust and debris from entering. Simultaneously, the enclosure's compatibility with the mounting slot ensures its stability and airtightness. This design helps extend the equipment's lifespan and maintain a clean and tidy experimental environment.

[0017] Compared with existing technologies, the beneficial effects of this utility model are as follows: 1. By designing the clamping assembly, including clamp base, telescopic component, clamp arm, and clamping plate, effective fixation of culture flasks of different shapes and sizes is achieved. The clamp arm is an elastic arc-shaped plate, and the clamping plate is a rubber arc-shaped plate. This design not only provides sufficient clamping force but also ensures that the experimental samples are not damaged during clamping. 2. Providing clamp bases of various diameters allows the clamping assembly to be applicable to experimental samples of different sizes. Simultaneously, the positioning plates of all clamping components have the same diameter, ensuring the stability and interchangeability of the clamping assembly on the shaking stage. This design improves the versatility and flexibility of the multifunctional constant temperature shaking chamber. 3. The design of the balancing component ensures that the main body of the shaking chamber remains horizontal during operation and automatically levels itself upon initial placement, avoiding experimental errors caused by tilting. The hemispherical rubber pad increases the contact area between the electric actuator and the ground, improving the stability of the equipment. Attached Figure Description

[0018] Figure 1 This is a side sectional view of the multifunctional constant temperature shaking box of this utility model;

[0019] Figure 2 This is a top-view schematic diagram of the clamping assembly of this utility model;

[0020] Figure 3 This is a schematic diagram of the clamping assembly of this utility model from an upward angle;

[0021] Figure 4This is a top-view schematic diagram of the main body of the oscillation box of this utility model;

[0022] Figure 5 This is a schematic diagram of the overall structure of a multifunctional constant temperature shaking chamber according to the present invention.

[0023] In the diagram: 1. Shaking box body; 2. Control console; 3. Shaking stage; 31. Positioning slot; 4. Clamping assembly; 41. Fixture base; 42. Bidirectional screw; 43. Moving block; 44. Clamping arm; 45. Clamping plate; 46. Knob block; 47. Positioning plate; 5. Observation assembly; 51. Observation arm; 52. Camera; 6. Warning assembly; 61. Sensor group; 62. Warning light; 7. Box cover; 8. Balancing assembly; 81. Electronic bubble level; 82. Electric actuator. Detailed Implementation

[0024] The technical solution of this utility model will now be clearly and completely described with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of this utility model, and not all of them. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this utility model.

[0025] In the description of this utility model, it should be noted that the terms "middle", "upper", "lower", "left", "right", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.

[0026] like Figure 1 As shown in Figure 5, this embodiment provides a multifunctional constant temperature shaking chamber, including a shaking chamber body 1, a control console 2 on one side of the shaking chamber body, a shaking platform 3 inside the shaking chamber body, a clamping assembly 4 on the shaking platform 3, the clamping assembly 4 including a clamp seat 41, a telescopic component inside the clamp seat 41, two symmetrical clamping arms 44 extending out of the clamp seat 41 on the telescopic component, the clamping arms 44 are elastic arc plates, the top of each clamping arm 44 is provided with a clamping plate 45, the clamping plate 45 is a rubber arc plate, and the bottom of the clamp seat 41 is provided with a positioning plate 47 that docks with the shaking platform 3.

[0027] In the above embodiment, by designing the clamping assembly 4, including the clamp base 41, telescopic component, clamping arm 44 and clamping plate 45, effective fixation of culture flasks of different shapes and sizes is achieved. The clamping arm 44 is an elastic arc plate and the clamping plate 45 is a rubber arc plate. This design not only provides sufficient clamping force, but also ensures that the experimental samples will not be damaged during the clamping process. At the same time, the positioning plate 47 at the bottom of the clamp base 41 docks with the oscillation stage 3, ensuring the stability of the clamping assembly 4 during the oscillation process.

[0028] like Figure 2 As shown, two coaxial symmetrical sliding grooves are opened on the upper surface of the clamp seat 41. The telescopic component includes a bidirectional screw 42 that passes through the symmetrical sliding grooves from the side wall of the clamp seat 41. A knob block 46 is provided at one end of the bidirectional screw 42 located on the side wall of the clamp seat 41. A movable block 43 that is slidably connected to the symmetrical sliding grooves is threaded on the surface of the bidirectional screw 42 and the surface located on the two symmetrical sliding grooves. The bottom ends of the two clamping arms 44 are respectively fixed on the two movable blocks 43.

[0029] In the above embodiment, the flexible adjustment of the spacing between the clamping arms 44 is achieved by introducing a bidirectional screw 42 and a moving block 43. The knob block 46 allows the user to easily rotate the bidirectional screw 42, thereby driving the two moving blocks 43 to slide within the groove, thus adjusting the distance between the two clamping arms 44. This design not only improves the applicability of the clamping assembly 4 but also makes the clamping process simpler and faster.

[0030] It is important to note that multiple clamping components 4 are provided, each with a different diameter of the clamping base 41, while all clamping components 4 have the same diameter of positioning plate 47. In this embodiment, by providing clamping bases 41 of various diameters, the clamping components 4 can be adapted to experimental samples of different sizes. Simultaneously, the identical diameter of the positioning plate 47 of all clamping components 4 ensures the stability and interchangeability of the clamping components 4 on the oscillation stage 3. This design improves the versatility and flexibility of the multifunctional constant temperature shaking chamber.

[0031] Matching it, such as Figure 4 As shown, multiple positioning slots adapted to the positioning plate 47 are formed on the top surface of the oscillating stage 3. The design of the positioning slots allows the positioning plate 47 to be more stably fixed on the oscillating stage 3, thereby improving the stability of the clamping assembly 4 during oscillation. This design helps to reduce experimental errors and improve the accuracy of experimental results.

[0032] It should be noted that in practical applications, the positioning groove 31 can be designed as a threaded groove, and the outer surface of the corresponding positioning plate 47 is provided with threads so that the positioning plate 47 can be threadedly installed in the positioning groove 31. Alternatively, the positioning plate 47 can be designed as a magnetic plate, with iron sheet welded to the inner bottom wall of the positioning groove 31. When the positioning plate 47 is inserted into the positioning groove 31, it is fixed by magnetic attraction.

[0033] like Figure 2 , Figure 3 As shown in the illustration, in this embodiment of a multifunctional constant-temperature shaking chamber, an observation component 5 is provided on the side wall of the fixture base 41. The observation component 5 includes an observation arm 51 disposed on the side wall of the fixture base 41, and a camera 52 aligned with the center of the fixture base 41 at the other end of the observation arm 51. The introduction of the observation component 5 allows the user to monitor the state of the experimental sample in real time. The camera 52, aligned with the center of the fixture base 41, can clearly capture changes in the experimental sample. This design is particularly important for experiments requiring long-term oscillation, as it allows the user to observe the experimental progress without opening the shaking chamber.

[0034] In addition, the multifunctional constant temperature shaking chamber provided in this embodiment also includes an alarm component 6. The alarm component 6 includes a sensor group 61 disposed inside the shaking chamber body 1 and an alarm light 62 on the inclined surface of the control panel 2. The sensor group 61 includes one or more of a temperature sensor, a humidity sensor, and a speed sensor. The design of the alarm component 6 improves the safety and reliability of the multifunctional constant temperature shaking chamber. The sensor group 61 can monitor parameters such as temperature and humidity inside the shaking chamber in real time. Once these parameters exceed a preset range, the alarm light 62 will illuminate, reminding the user to take timely measures. This design helps prevent experimental failures or equipment damage.

[0035] Ah Ru Figure 1 As shown, the bottom of the oscillating box body 1 is provided with a balancing component 8. The balancing component 8 includes an electronic level bubble 81 located at the center of the bottom of the oscillating box body 1 and four electric actuators 82 respectively arranged around the bottom of the oscillating box body 1. The movable end of the electric actuator 82 is provided with a hemispherical rubber pad.

[0036] In this embodiment, the design of the balancing component 8 ensures the stability of the multifunctional constant-temperature shaking chamber during operation. The electronic bubble level 81 can monitor the horizontal state of the shaking chamber in real time. Once tilting is detected, the electric actuator 82 will adjust the height of the hemispherical rubber pad to restore the shaking chamber to a horizontal position. This design helps to reduce the impact of vibration on experimental results and improve the accuracy and reliability of the experiment.

[0037] like Figure 1 , Figure 5As shown, a cover 7 is detachably mounted on the top of the shaking chamber body 1, and a mounting groove adapted to the cover 7 is provided on the top of the shaking chamber body 1. In this embodiment, the design of the cover 7 allows the multifunctional constant temperature shaking chamber to be easily closed when not in use, thereby preventing dust and debris from entering the chamber. At the same time, the compatibility between the cover 7 and the mounting groove ensures the stability and sealing of the cover 7. This design helps extend the service life of the equipment and maintain a clean and tidy experimental environment.

[0038] The working principle of the above embodiment is as follows: Select a clamping component 4 of appropriate size according to the specifications of the culture flask, install the positioning plate 47 into the positioning groove 31 on the oscillation stage 3, then place the culture flask on the clamp seat 41, then turn the knob block 46 to drive the bidirectional screw 42 to rotate, thereby causing the two oppositely arranged clamping arms 44 to move relative to each other until the two clamping plates 45 clamp the culture flask, then cover the box cover 7, and the device can be operated through the control console 2. During the oscillation process, the camera 52 monitors the environment inside the box and the changes in the cells inside the culture flask in real time, and the sensor group 61 monitors the temperature, humidity and other parameters inside the oscillation box in real time. Once the preset range is exceeded, the warning light 62 will light up to remind the user to take timely measures.

[0039] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A multifunctional constant temperature shaking chamber, comprising a shaking chamber body, a control console on one side of the shaking chamber body, and a shaking stage inside the shaking chamber body, characterized in that, The oscillating platform is provided with a clamping assembly, which includes a clamping seat. The clamping seat has a telescopic component inside, and the telescopic component has two symmetrical clamping arms that extend out of the clamping seat. The clamping arms are elastic arc-shaped plates, and the top of each of the two clamping arms is provided with a clamping plate, which is a rubber arc-shaped plate. The bottom of the clamping seat is provided with a positioning plate that docks with the oscillating platform.

2. The multifunctional constant temperature shaking chamber according to claim 1, characterized in that: The upper surface of the clamp seat has two coaxial symmetrical sliding grooves. The telescopic component includes a bidirectional screw that passes through the symmetrical sliding grooves from the side wall of the clamp seat. A knob block is provided at one end of the bidirectional screw located on the side wall of the clamp seat. A movable block that is slidably connected to the symmetrical sliding groove is threaded onto the surface of the bidirectional screw and the surface of the two symmetrical sliding grooves. The bottom ends of the two clamping arms are respectively fixed on the two movable blocks.

3. The multifunctional constant temperature shaking chamber according to claim 1, characterized in that: The clamping assembly is provided in multiple ways, and the clamping base of different clamping assemblies has a different diameter, while the positioning plate of all clamping assemblies has the same diameter.

4. A multifunctional constant temperature shaking chamber according to claim 1, characterized in that: The clamp seat sidewall is provided with an observation component, which includes an observation arm disposed on the clamp seat sidewall, and a camera aligned with the center of the clamp seat is disposed at the other end of the observation arm.

5. A multifunctional constant temperature shaking chamber according to claim 1, characterized in that: It also includes a warning component, which includes a sensor group disposed inside the main body of the oscillating chamber and a warning light on the inclined surface of the control console. The sensor group includes one or more of a temperature sensor, a humidity sensor, and a speed sensor.

6. A multifunctional constant temperature shaking chamber according to claim 1, characterized in that: The top surface of the oscillating stage is provided with multiple positioning slots that are adapted to the positioning plate.

7. A multifunctional constant temperature shaking chamber according to claim 1, characterized in that: The bottom of the oscillating chamber is equipped with a balancing component, which includes an electronic level bubble located at the center of the bottom of the oscillating chamber and four electric actuators respectively arranged around the bottom of the oscillating chamber. The movable end of each electric actuator is provided with a hemispherical rubber pad.

8. A multifunctional constant temperature shaking chamber according to claim 1, characterized in that: The top of the oscillation chamber body is detachably fitted with a cover, and the top of the oscillation chamber body has an installation groove that fits the cover.