A gyroscopic oscillator
Patent Information
- Application Number
- CN202522213552.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-20
- Publication Date
- 2026-09-11
- Estimated Expiration
- 2035-10-20
AI Technical Summary
[0004]本实用新型的目的在于提供一种回旋式振荡器,以解决上述背景技术中提出的回旋式振荡器在实际使用中对不同规格瓶装添加剂的混合适配性差,仅能满足特定规格需求,适用范围窄,大幅降低实用性,且在固定瓶装添加剂时仅依赖储存槽自身结构,缺乏辅助固定机构,导致振荡中瓶体易移位、倾倒,固定稳定性差的问题
1.通过放置架承载储存架、插杆及安装组件,为各部件提供稳定安装基础;通过插杆在更换储存架时实现精准对位,确保储存架能快速、准确地与放置架对接,提升储存架拆装效率;通过安装组件可灵活解除或实现对储存架的固定,方便根据瓶装添加剂规格更换带有不同直径大小储存槽的储存架,有效解决传统设备适配性差的问题,大幅拓宽设备适用范围,进而提高设备整体实用性。
Smart Images

Figure CN224736153U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of oscillator technology, specifically a gyro oscillator. Background Technology
[0002] A gyroscopic shaker is a laboratory device widely used in fields such as biology, chemistry, and medicine. Its core function is to achieve uniform oscillation of liquid samples (such as culture media, reagent mixtures, extracts, etc.) through gyroscopic (or circular) reciprocating motion to meet the experimental needs of sample culture, chemical reaction acceleration, solute dissolution, or extraction. Its motion characteristics are that the oscillation trajectory is circular or elliptical, and the oscillation frequency and amplitude are adjustable. It can achieve sample mixing under mild and stable conditions, avoiding the destruction of sample components (such as bioactive substances) due to violent stirring.
[0003] In existing technologies, rotary shakers have poor adaptability to the mixing needs of bottled additives of different specifications in actual use. They can only meet the shaking and mixing operations of bottled additives of specific specifications, resulting in a narrow range of applications and difficulty in covering diverse experimental or production scenarios, which greatly reduces the overall practicality of the equipment. Moreover, when fixing bottled additives, the equipment relies solely on the structure of the storage tank itself for fixation, lacking a targeted auxiliary fixing mechanism. This makes it easy for bottled additives to shift or tip over during shaking, significantly reducing the stability of fixation. This may affect the mixing effect and also poses a risk of sample spillage. Utility Model Content
[0004] The purpose of this invention is to provide a rotary oscillator to solve the problems mentioned in the background art, such as poor compatibility of rotary oscillators with different specifications of bottled additives in actual use, only meeting specific specification requirements, narrow application range, greatly reducing practicality, and relying solely on the structure of the storage tank itself to fix bottled additives without auxiliary fixing mechanisms, resulting in easy displacement and tipping of the bottle during oscillation and poor fixing stability.
[0005] To achieve the above objectives, this utility model provides the following technical solution: a rotary oscillator, including a base, and further including an anti-slip pad fixedly connected to the bottom of the base, an oscillation component mounted on the base, a placement rack mounted on the oscillation component, a plug rod fixedly connected to the placement rack, a storage rack detachably mounted on the placement rack, an installation component mounted on the placement rack, a storage slot opened on the storage rack, an anti-slip pad fixedly connected to the storage slot, and a clamping component mounted on the storage rack. The plug rod is disposed on the storage rack, the installation component is used to install and remove the storage rack, the storage slot is used to place bottled additives, and the clamping component is used to assist in clamping the bottled additives placed on the storage slot.
[0006] In a preferred embodiment of this technical solution, the placement rack has an installation slot at a corresponding position on the storage rack, and the storage rack is detachably installed in the installation slot on the placement rack.
[0007] In a preferred embodiment of this technical solution, the storage rack has a through hole at the corresponding position of the insertion rod, and the insertion rod is positioned at the through hole of the storage rack.
[0008] According to the preferred embodiment of this technical solution, the installation component includes a fixed frame fixedly connected to the outside of the placement rack, a first optical rod slidably connected to the fixed frame, a locking block fixedly connected to one end of the first optical rod, a first spring fixedly connected between the locking block and the fixed frame, and a lever fixedly connected to the other end of the first optical rod. The locking block is engaged with the storage rack, and the lever is used to move the first optical rod to slide on the fixed frame.
[0009] In this preferred embodiment of the technical solution, one end of the card block is set to an arc shape, and the other end is set to a straight plate shape, and the storage rack first contacts the arc end of the card block.
[0010] In a preferred embodiment of this technical solution, the storage rack has a slot at the corresponding position of the card block, and the card block engages with the slot of the storage rack.
[0011] According to the preferred embodiment of this technical solution, the clamping assembly includes a fixed frame fixedly connected to the storage slot, a second light rod slidably connected to the fixed frame, a fixed seat fixedly connected to one end of the second light rod, a limiting plate fixedly connected to the other end of the second light rod, a second spring fixedly connected between the fixed seat and the fixed frame, and a rotating roller rotatably connected to the fixed seat.
[0012] Based on the preferred embodiment of this technical solution, the storage slots are provided in several groups, the several groups of storage slots are symmetrically distributed on the storage rack, and the number of clamping components is the same as that of the storage slots, and the several groups of clamping components are sequentially distributed at the storage slots.
[0013] In a preferred embodiment of this technical solution, the oscillation assembly includes a motor fixedly connected to the base, a rotating disk fixedly connected to the output end of the motor, and a fixed rod fixedly connected to the rotating disk at one end. The placement frame is fixedly connected to the other end of the fixed rod, and the motor is used to drive the rotating disk to rotate.
[0014] Compared with the prior art, the beneficial effects of this utility model are: 1. The placement rack supports the storage rack, insertion rod, and installation components, providing a stable installation foundation for each component; the insertion rod enables precise alignment when replacing the storage rack, ensuring that the storage rack can quickly and accurately connect with the placement rack, improving the efficiency of storage rack assembly and disassembly; the installation components allow for flexible release or fixation of the storage rack, facilitating the replacement of storage racks with storage slots of different diameters according to the specifications of bottled additives, effectively solving the problem of poor adaptability of traditional equipment, greatly expanding the scope of application of the equipment, and thus improving the overall practicality of the equipment.
[0015] 2. The elastic force of the second spring ensures that the rotating roller is always in close contact with the bottle surface, providing a continuous and appropriate clamping force to prevent the bottle from loosening. Furthermore, the rotational characteristics of the rotating roller mean that it rotates with the bottle when it is placed or removed, reducing the frictional resistance between the bottle and the rotating roller, preventing damage to the bottle surface, and facilitating the handling of the bottle. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of one embodiment of a gyro oscillator according to the present invention; Figure 2 This is a schematic diagram of the insertion rod structure of this utility model; Figure 3 This is a schematic diagram of the installation component structure of this utility model; Figure 4 This is a schematic diagram of the clamping component structure of this utility model; Figure 5 This is a schematic diagram of the oscillation component structure of this utility model.
[0017] In the diagram: 1. Base; 21. Placement rack; 22. Insert rod; 23. Storage rack; 24. Storage slot; 25. Anti-slip mat; 26. Fixing frame; 27. First guide rod; 28. Locking block; 29. First spring; 210. Pulling block; 31. Fixing frame; 32. Second guide rod; 33. Fixing seat; 34. Rotating roller; 35. Second spring; 36. Limiting plate; 41. Motor; 42. Rotating plate; 43. Fixing rod; 5. Anti-slip pad. Detailed Implementation
[0018] 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.
[0019] Please see Figure 1-5This utility model provides an embodiment of a rotary vibrator, including a base 1, an anti-slip pad 5 fixedly connected to the bottom of the base 1, an oscillation assembly mounted on the base 1, a placement rack 21 mounted on the oscillation assembly, a plug rod 22 fixedly connected to the placement rack 21, a storage rack 23 detachably mounted on the placement rack 21, a mounting assembly mounted on the placement rack 21, a storage slot 24 formed in the storage rack 23, an anti-slip pad 25 fixedly connected to the storage slot 24, and a clamping assembly mounted on the storage rack 23. The plug rod 22 is disposed on the storage rack 23, the mounting assembly is used for installing and removing the storage rack 23, and the storage slot 24 is used for placing bottled additives. The clamping assembly is used to assist in clamping the bottled additives placed on the storage tank 24. The placement frame 21 supports the storage rack 23, the insertion rod 22, and the installation assembly, providing a stable installation base for each component. The insertion rod 22 enables precise alignment when replacing the storage rack 23, ensuring that the storage rack 23 can quickly and accurately connect with the placement frame 21, improving the efficiency of disassembly and assembly of the storage rack 23. The installation assembly can flexibly release or fix the storage rack 23, facilitating the replacement of storage racks 23 with storage tanks 24 of different diameters according to the specifications of the bottled additives. This effectively solves the problem of poor adaptability of traditional equipment, greatly expands the scope of application of the equipment, and thus improves the overall practicality of the equipment.
[0020] Please see Figure 2 A further solution based on this embodiment is as follows: the placement rack 21 has an installation groove at the corresponding position of the storage rack 23, and the storage rack 23 is detachably installed in the installation groove on the placement rack 21. By opening an installation groove on the placement rack 21 corresponding to the storage rack 23, a precise installation positioning space is provided for the storage rack 23, so that the storage rack 23 can be quickly embedded into the placement rack 21, avoiding positional deviation of the storage rack 23 during installation; at the same time, the structural design of the installation groove can also play a certain limiting role for the storage rack 23, reducing the amplitude of lateral swaying of the storage rack 23 during oscillation, further ensuring the stability of the storage rack 23 and the bottle, and providing a foundation for subsequent efficient mixing.
[0021] Please see Figure 2 A further solution based on this embodiment is as follows: the storage rack 23 has a through hole at the corresponding position of the insertion rod 22, and the insertion rod 22 is set at the through hole of the storage rack 23. By opening a through hole on the storage rack 23 corresponding to the insertion rod 22, the insertion rod 22 can be smoothly inserted into the storage rack 23, realizing the dual positioning of the storage rack 23 and the placement rack 21, further improving the installation accuracy of the storage rack 23, and preventing the storage rack 23 from rotating or shifting in the installation slot; this positioning method can also play a guiding role in the disassembly and assembly process of the storage rack 23, making it convenient for operators to quickly align the installation position and improve the disassembly and assembly efficiency of the storage rack 23.
[0022] Please see Figure 3A further solution based on this embodiment is as follows: the installation assembly includes a fixed frame 26 fixedly connected to the outside of the placement rack 21, a first optical rod 27 slidably connected to the fixed frame 26, a locking block 28 fixedly connected to one end of the first optical rod 27, a first spring 29 fixedly connected between the locking block 28 and the fixed frame 26, and a lever 210 fixedly connected to the other end of the first optical rod 27. The locking block 28 is engaged with the storage rack 23, and the lever 210 is used to move the first optical rod 27 to slide on the fixed frame 26. The fixed frame 26 provides stable installation support for the first optical rod 27, locking block 28, and other components, ensuring installation. The component structure is stable; the sliding characteristics of the first light rod 27 drive the locking block 28 to achieve telescopic movement, thereby completing the locking and unlocking of the storage rack 23; the elastic force of the first spring 29 ensures that the locking block 28 always has a tendency to move towards the storage rack 23, ensuring the tightness of the locking block 28 and the storage rack 23 and preventing the storage rack 23 from falling off during vibration; the toggle block 210 allows the operator to manually control the sliding of the first light rod 27. Simply toggle the toggle block 210 to quickly release the locking block 28 from the storage rack 23, simplifying the disassembly process of the storage rack 23 and improving the ease of operation.
[0023] Please see Figure 3 A further solution based on this embodiment is as follows: one end of the locking block 28 is set as an arc shape, and the other end is set as a straight plate shape. The storage rack 23 first contacts the arc end of the locking block 28. By setting one end of the locking block 28 as an arc shape, when the storage rack 23 is installed, the storage rack 23 contacts the arc end. The arc surface can convert the pushing force of the storage rack 23 into a force that makes the locking block 28 slide outward. The locking block 28 can automatically avoid the block without manually moving the lever 210, so that the storage rack 23 can be smoothly embedded into the installation slot. After the storage rack 23 is installed in place, the first spring 29 pushes the locking block 28 to reset. At this time, the straight plate end of the locking block 28 engages with the storage rack 23. The straight plate structure can effectively limit the reverse movement of the storage rack 23, ensuring that the storage rack 23 is firmly fixed. This simplifies the installation operation and ensures the fixing effect.
[0024] Please see Figure 3 A further solution based on this embodiment is as follows: the storage rack 23 has a slot at the corresponding position of the locking block 28, and the locking block 28 is engaged with the slot of the storage rack 23. By opening a slot on the storage rack 23 corresponding to the locking block 28, the locking block 28 can be accurately embedded in the slot, forming a more stable engagement structure, preventing the locking block 28 from shifting due to force during oscillation and detaching from the storage rack 23; the cooperation between the slot and the locking block 28 can also further limit the displacement of the storage rack 23, preventing the storage rack 23 from swaying up and down or left and right in the installation slot, significantly improving the stability of the storage rack 23 after installation, and providing a guarantee for the safe oscillation of the bottle.
[0025] Please see Figure 4A further solution based on this embodiment is as follows: the clamping assembly includes a fixed frame 31 fixedly connected to the storage slot 24, a second guide rod 32 slidably connected to the fixed frame 31, a fixed seat 33 fixedly connected to one end of the second guide rod 32, a limiting plate 36 fixedly connected to the other end of the second guide rod 32, a second spring 35 fixedly connected between the fixed seat 33 and the fixed frame 31, and a rotating roller 34 rotatably connected to the fixed seat 33. The fixed frame 31 provides an installation base for the second guide rod 32, the fixed seat 33, and other components, ensuring that the clamping assembly can be stably assembled in the storage slot 24; the sliding of the second guide rod 32... The features enable the fixed base 33 and rotating roller 34 to achieve position adjustment to accommodate bottled additives of different diameters; the elastic force of the second spring 35 ensures that the rotating roller 34 is always in close contact with the bottle surface, providing a continuous and appropriate clamping force to prevent the bottle from loosening; the limiting plate 36 prevents the second light rod 32 from slipping out of the fixed frame 31, ensuring the structural integrity of the clamping assembly; the rotational characteristics of the rotating roller 34 allow it to rotate with the bottle when placing or removing the bottle, reducing the frictional resistance between the bottle and the rotating roller 34, preventing damage to the bottle surface, and facilitating the handling of the bottle.
[0026] Please see Figure 1 A further solution based on this embodiment is as follows: several sets of storage tanks 24 are provided, and the several sets of storage tanks 24 are symmetrically distributed on the storage rack 23. The number of clamping components is the same as that of the storage tanks 24. The several sets of clamping components are sequentially distributed at the storage tanks 24. By setting several sets of symmetrically distributed storage tanks 24, multiple bottled additives can be placed at the same time, which greatly increases the number of samples mixed by the equipment in a single oscillation and improves work efficiency. The symmetrical distribution structure design can make the storage rack 23 evenly stressed, avoiding the storage rack 23 from tilting during oscillation due to uneven weight distribution, and ensuring stable operation of the equipment. At the same time, each set of storage tanks 24 is equipped with corresponding clamping components, which can ensure that each bottle can be reliably clamped and fixed, avoiding displacement or tipping of some bottles due to lack of fixation, and ensuring the consistency of the mixing effect of all samples.
[0027] Please see Figure 5A further solution based on this embodiment is as follows: the oscillation assembly includes a motor 41 fixedly connected to the base 1, a rotating disk 42 fixedly connected to the output end of the motor 41, and a fixed rod 43 fixedly connected to the rotating disk 42 at one end. The placement frame 21 is fixedly connected to the other end of the fixed rod 43. The motor 41 is used to drive the rotating disk 42 to rotate, and provides stable power output through the motor 41 to provide the source power for the oscillation motion. The rotating disk 42 converts the rotational motion of the motor 41 into the circular motion of the fixed rod 43, thereby driving the placement frame 21 to perform a rotary oscillation motion to achieve the mixing of bottled additives. The fixed rod 43 connects the rotating disk 42 and the placement frame 21 to ensure that the motion of the rotating disk 42 can be accurately transmitted to the placement frame 21, thereby improving the applicability of the equipment.
[0028] Working principle: First, the bottled additives to be mixed are placed into the corresponding storage slots 24 of the storage rack 23. The anti-slip pads 25 in the storage slots 24 initially increase the friction between the bottle and the slot wall. At the same time, the second spring 35 in the clamping assembly will elastically deform when the bottle is placed in, pushing the second guide rod 32 to slide along the fixed frame 31. This will cause the fixed seat 33 and the rotating roller 34 to tightly fit against the bottle surface, providing a continuous and appropriate auxiliary clamping force for the bottle. The rotating roller 34 can also rotate with the bottle when it is picked up or put down, reducing friction to protect the bottle. If it is necessary to adapt to bottled additives of different specifications, the lever 210 on the fixed frame 26 in the mounting assembly can be moved to drive the first guide rod 27 to slide, causing the locking block 28 to compress the first spring 29 and disengage from the slot of the storage rack 23, releasing the fixation of the storage rack 23. Then, the storage rack 23 can be removed from the mounting slot of the placement rack 21 and replaced with a new storage rack with a storage slot 24 of the corresponding diameter. 23. During installation, simply align the through hole of the storage rack 23 with the insertion rod 22 on the placement rack 21 and push it into the mounting slot. The storage rack 23 first contacts the arc end of the locking block 28, pushing the locking block 28 to automatically avoid it. After the storage rack 23 is fully embedded, the first spring 29 resets and drives the locking block 28 to lock into the slot of the storage rack 23, completing the precise fixing of the storage rack 23. After the equipment is started, the motor 41 in the oscillation assembly drives the rotating disk 42 at the output end to rotate. The rotating disk 42 drives the placement rack 21 to perform a rotary oscillation motion through the fixed rod 43. The placement rack 21 further drives the storage rack 23 and bottled additives fixed on it to move synchronously, realizing the uniform mixing of the additives in the bottle. During the process, the anti-slip pads 5 at the bottom of the base 1 enhance the friction between the equipment and the placement surface, preventing the equipment from shifting. In addition, several sets of symmetrically distributed storage slots 24 can make the storage rack 23 evenly stressed, ensuring the stability of the overall oscillation process, and finally efficiently completing the mixing operation of the bottled additives.
[0029] 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 gyroscopic oscillator comprising a base (1), characterised in that: It also includes an anti-slip pad (5) fixedly connected to the bottom of the base (1), an oscillation assembly mounted on the base (1), a placement rack (21) mounted on the oscillation assembly, a plug (22) fixedly connected to the placement rack (21), a storage rack (23) detachably mounted on the placement rack (21), an installation assembly mounted on the placement rack (21), a storage slot (24) opened on the storage rack (23), an anti-slip pad (25) fixedly connected to the storage slot (24), and a clamping assembly mounted on the storage rack (23). The plug (22) is set on the storage rack (23), the installation assembly is used to install and remove the storage rack (23), the storage slot (24) is used to place bottled additives, and the clamping assembly is used to assist in clamping the bottled additives placed in the storage slot (24).
2. A gyroscopic oscillator according to claim 1, characterized in that: The placement rack (21) has an installation slot at the corresponding position of the storage rack (23), and the storage rack (23) is detachably installed in the installation slot on the placement rack (21).
3. A gyroscopic oscillator according to claim 1, characterized in that: The storage rack (23) has a through hole at the corresponding position of the insertion rod (22), and the insertion rod (22) is set at the through hole of the storage rack (23).
4. A gyroscopic oscillator according to claim 1, characterized in that: The mounting assembly includes a fixed frame (26) fixedly connected to the outside of the placement rack (21), a first light rod (27) slidably connected to the fixed frame (26), a locking block (28) fixedly connected to one end of the first light rod (27), a first spring (29) fixedly connected between the locking block (28) and the fixed frame (26), and a lever (210) fixedly connected to the other end of the first light rod (27). The locking block (28) is engaged with the storage rack (23), and the lever (210) is used to move the first light rod (27) to slide on the fixed frame (26).
5. A gyroscopic oscillator according to claim 4, characterised in that: One end of the card block (28) is set to be arc-shaped, and the other end is set to be straight plate-shaped. The storage rack (23) first contacts the arc-shaped end of the card block (28).
6. A gyroscopic oscillator according to claim 4, characterized in that: The storage rack (23) has a slot at the corresponding position of the card block (28), and the card block (28) is engaged in the slot of the storage rack (23).
7. A gyroscopic oscillator according to claim 1, wherein: The clamping assembly includes a fixed frame (31) fixedly connected to the storage slot (24), a second light rod (32) slidably connected to the fixed frame (31), a fixed seat (33) fixedly connected to one end of the second light rod (32), a limiting plate (36) fixedly connected to the other end of the second light rod (32), a second spring (35) fixedly connected between the fixed seat (33) and the fixed frame (31), and a rotating roller (34) rotatably connected to the fixed seat (33).
8. A gyroscopic oscillator according to claim 7, characterized in that: The storage slots (24) are provided in several groups, and the storage slots (24) are symmetrically distributed on the storage rack (23). The number of clamping components is the same as that of the storage slots (24), and the clamping components are distributed in sequence at the storage slots (24).
9. A gyroscopic oscillator according to claim 1, wherein: The oscillation assembly includes a motor (41) fixedly connected to the base (1), a rotating disk (42) fixedly connected to the output end of the motor (41), and a fixed rod (43) fixedly connected to the rotating disk (42) at one end. The placement frame (21) is fixedly connected to the other end of the fixed rod (43). The motor (41) is used to drive the rotating disk (42) to rotate.