Silicone oil operation device

By setting suction cups at the bottom of the base of the silicone oil storage device and setting a spiral plate in the cavity, the problems of poor stability and disordered airflow during transportation are solved, and high stability and efficient heat exchange of the device are achieved.

CN222922169UActive Publication Date: 2025-05-30JIANGXI BETTER SILICON IND NEW MATERIALS CO LTD
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Patent Information

Application Number
CN202421982871.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-15
Publication Date
2025-05-30
Estimated Expiration
2034-08-15

AI Technical Summary

Technical Problem

The existing silicone oil storage devices have poor stability during transportation, are prone to shaking or rolling, and disordered airflow affects heat exchange efficiency.

Method used

A silicone oil operation device including a base, an inner and outer bucket, a suction cup and an annular plate is designed. A suction cup is provided at the bottom of the base to prevent the device from turning over. The annular plate controls the on and off of the air circulation in the suction cup, and a spiral plate is provided in the cavity to fix the air flow direction.

Benefits of technology

The stability of the device is improved, silicone oil is prevented from spilling, and the heat exchange efficiency is improved through an ordered airflow.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of silicone oil storage, in particular to a silicone oil transfer device which comprises a base, an inner barrel, a sucker and an annular plate. A connecting cover is detachably arranged at the top end of the outer barrel. The inner barrel is located in the outer barrel, a cavity is formed between the outer wall of the inner barrel and the inner wall of the outer barrel, and the outer barrel is provided with an exhaust pipe and an air inlet pipe which are communicated with the cavity. The suction cups are connected with the base and distributed around the center of the base in an annular array mode. The base is provided with an annular groove and a plurality of through holes, and the through holes are communicated with the annular groove suction cup. The annular plate is located in the annular groove and rotationally connected with the annular groove, and a plurality of ventilation grooves communicating with the outside and the corresponding through holes are formed in the annular plate. The suction cup is arranged at the bottom of the base, so that the placing stability of the device can be effectively improved, the device is prevented from freely sliding, the device is convenient to disassemble, assemble and connect, and meanwhile, the airflow direction is constant and orderly and the heat exchange efficiency is high when air is introduced into the inner cavity.
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Description

Technical Field

[0001] The utility model relates to the technical field of silicone oil storage, in particular to a silicone oil operation device. Background Art

[0002] Silicone oil generally refers to a linear polysiloxane product that remains in a liquid state at room temperature. During storage and transportation, silicone oil needs to be kept dry and dark to avoid natural decomposition. Traditional storage containers are mostly simple plastic barrels or stainless steel barrel structures, which are not convenient for temperature control, and such structures are prone to deformation when stacked in multiple layers, even causing silicone oil to overflow.

[0003] The technical solution disclosed in the Chinese patent with the authorization announcement number CN209192657U can transfer a part of the gravity to the bottom surface through the outer barrel by setting the inner barrel and the outer barrel, improving the overall support and fixing performance of the stacked silicone oil storage barrels, preventing the problem of silicone oil leakage caused by the deformation of the barrel body, and at the same time, cold air can be blown into the ventilation gap by using a fan to facilitate the cooling of the silicone oil in the inner barrel.

[0004] However, this device still has deficiencies: the stability of the device is poor. After it is placed on the support table, it is easily affected by the transportation tool and shakes or even overturns. And in this device, there is a lack of a guiding structure for the gas in the ventilation gap, resulting in disordered air flow and affecting the heat exchange efficiency. Summary of the Utility Model

[0005] The purpose of the utility model is to propose a silicone oil operation device aiming at the problems existing in the background art.

[0006] The technical solution of the utility model: a silicone oil operation device includes a base, the base is connected to an inner and outer barrel, and a connection cover is detachably arranged at the top of the outer barrel.

[0007] An inner barrel is located inside the outer barrel. A cavity is arranged between the outer wall of the inner barrel and the inner wall of the outer barrel, and an exhaust pipe and an intake pipe communicating with the cavity are arranged on the outer barrel.

[0008] Suction cups are connected to the base, and each suction cup is distributed in an annular array around the center of the base. An annular groove is arranged on the base, and a number of through holes are arranged on the base, and the through holes communicate the annular groove with the suction cups.

[0009] And an annular plate is located in the annular groove and is rotatably connected thereto. A number of air permeable grooves communicating with the outside and the corresponding through holes are arranged on the annular plate.

[0010] Preferably, a groove is arranged at the bottom of the base, and a shoulder is arranged at the top of the connection cover. The width of the shoulder is the same as the width and height of the groove.

[0011] Preferably, a storage groove with an opening facing downward is provided at the bottom of the base, and each suction cup is located within the storage groove. When the suction cup is in a flattened state, its lower end surface is in the same plane as the bottom surface of the base.

[0012] Preferably, a spiral plate is provided within the cavity. The inner side of the spiral plate is connected to the outer wall of the inner barrel, and the outer side of the spiral plate is connected to the inner wall of the outer barrel, so as to form a spiral channel within the cavity. The exhaust pipe and the intake pipe are respectively located at both ends of the spiral channel.

[0013] Preferably, the distance between the exhaust pipe and the base is greater than the distance between the intake pipe and the base.

[0014] Preferably, a locking member for preventing the annular plate from freely rotating relative to the base is provided on the base. The locking member includes a locking knob and a stud, and the stud is inserted into the annular groove and is screwed to the base.

[0015] Preferably, a patch type temperature sensor for monitoring its temperature is provided on the outer wall of the inner barrel, a control component connected to the patch type temperature sensor is provided within the base, and a wireless module for sending temperature signals to the control center is provided within the base. The wireless module is electrically connected to the control component.

[0016] Compared with the prior art, the utility model has the following beneficial technical effects:

[0017] By providing a structure with suction cups at the bottom of the base and using the suction cups to suck onto the support tabletop, it is possible to prevent the device from tipping over when the transportation vehicle or other transportation means shakes, improve the stability of the device placement, and effectively prevent the silicone oil from spilling. By providing an annular plate, the annular plate simultaneously controls the on-off of the air flow in all the suction cups, which is simple and convenient to operate. At the same time, the utility model is provided with a spiral plate in the cavity, and the spiral plate forms a spiral channel within the cavity, so that the air flow direction is fixed, the cold air enters and exits in an orderly manner, and the heat exchange efficiency is improved. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 is a schematic structural diagram of the utility model;

[0019] Figure 2 is a schematic connection structure diagram of the components within the outer barrel;

[0020] Figure 3 is a schematic connection structure diagram of the components on the base;

[0021] Figure 4 is a schematic connection structure diagram of the base and the annular plate.

[0022] Reference Numerals: 1, base; 101, groove; 102, storage groove; 103, annular groove; 104, through hole; 2, outer barrel; 3, connecting cover; 301, shoulder; 4, spiral plate; 5, inner barrel; 6, cavity; 7, exhaust pipe; 8, intake pipe; 9, suction cup; 10, annular plate; 1001, ventilation groove; 11, locking knob. Detailed Implementation Manner

[0023] Embodiment 1

[0024] As Figures 1-4 shown, a silicone oil operation device proposed by the present utility model includes a base 1, an inner barrel 5, a suction cup 9, and an annular plate 10. The base 1 connects the inner and outer barrels 2. A connecting cover 3 is detachably arranged at the top of the outer barrel 2. The connection manner between the connecting cover 3 and the outer barrel 2 includes but is not limited to screw connection, and the outer edge shapes and sizes of the connecting cover 3 and the base 1 are the same. The inner barrel 5 is located inside the outer barrel 2. A cavity 6 is arranged between the outer wall of the inner barrel 5 and the inner wall of the outer barrel 2. An exhaust pipe 7 and an intake pipe 8 communicating with the cavity 6 are arranged on the outer barrel 2. A spiral plate 4 is arranged in the cavity 6. One side of the spiral plate 4 facing inward is connected to the outer wall of the inner barrel 5, and the other side of the spiral plate 4 facing outward is connected to the inner wall of the outer barrel 2 to form a spiral channel in the cavity 6. The exhaust pipe 7 and the intake pipe 8 are respectively located at both ends of the spiral channel. The distance between the exhaust pipe 7 and the base 1 is greater than the distance between the intake pipe 8 and the base 1. A patch-type temperature sensor for monitoring its temperature is arranged on the outer wall of the inner barrel 5. A control component connected to the patch-type temperature sensor is arranged inside the base 1. A wireless module for sending temperature signals to the control center is arranged inside the base 1. The wireless module is electrically connected to the control component. The suction cup 9 is connected to the base 1, and each suction cup 9 is distributed in an annular array around the center of the base 1. An annular groove 103 is arranged on the base 1. A plurality of through holes 104 are arranged on the base 1, and the through holes 104 communicate the annular groove 103 with the suction cup 9. A storage groove 102 with an opening downward is arranged at the bottom of the base 1. Each suction cup 9 is located inside the storage groove 102, and when the suction cup 9 is in a flattened state, its lower end surface is on the same plane as the bottom surface of the base 1. The annular plate 10 is located in the annular groove 103 and is rotatably connected thereto. A plurality of ventilation grooves 1001 communicating with the outside and the corresponding through holes 104 are arranged on the annular plate 10. A locking member for preventing the annular plate 10 from freely rotating relative to the base 1 is arranged on the base 1. The locking member includes a locking knob 11 and a stud. The stud is inserted into the annular groove 103 and is screwed to the base 1.

[0025] In this embodiment, during assembly, the inner barrel 5 is first placed into the outer barrel 2, and then the connecting cover 3 is covered and tightened. The base 1 is placed on a support tabletop. To facilitate the movement of the device, at this time, the annular plate 10 is rotated so that the ventilation grooves 1001 communicate with the through holes 104 on the corresponding sides respectively, and the suction cups 9 remain in communication with the outside. At this time, the device can slide horizontally on the tabletop. When the base 1 slides into place, the annular plate 10 is rotated so that the ventilation grooves 1001 and the through holes 104 are misaligned, and the annular plate 10 closes the through holes 104. At this time, external air cannot enter the suction cups 9, and the suction cups 9 remain suctioned to the tabletop, ensuring that the device does not shift easily, and in the suction state, the device is not prone to tipping over; during transportation or storage, the base 1 is powered on, and the exhaust pipe 7 and the intake pipe 8 are connected to a circulating temperature control device, including but not limited to a fan, a refrigerator, and a connecting pipe. The refrigerator cools the air flowing in the connecting pipe, and the fan injects low-temperature air into the intake pipe 8. The low-temperature air exchanges heat in the spiral channel and then is discharged along the exhaust pipe 7 and flows back into the connecting pipe, thereby realizing the adjustment of the silicone oil storage environment in the inner barrel 5. The patch-type temperature sensor detects the surface temperature of the inner barrel 5. When the temperature is too high, the refrigerator and the fan are automatically started to achieve the purpose of energy-saving control.

[0026] Embodiment 2

[0027] As Figures 1-3 shown, for a silicone oil operation device proposed by the present utility model, compared with Embodiment 1, a groove 101 is provided at the bottom of the base 1, and a shoulder 301 is provided at the top of the connecting cover 3. The width of the shoulder is the same as both the width and the height of the groove 101.

[0028] In this embodiment, during stacking layer by layer, the groove 101 at the bottom of the upper-layer silicone oil barrel base 1 is aligned with the shoulder 301 at the top of the lower-layer silicone oil barrel connecting cover 3 and then lowered. Through the cooperation of the two, the relative sliding between the upper and lower silicone oil barrels can be effectively prevented, and the stacking stability can be improved.

[0029] The above has described in detail the embodiments of the present utility model in conjunction with the accompanying drawings. However, the present utility model is not limited to this. Within the knowledge scope of those skilled in the art to which it pertains, various changes can be made without departing from the gist of the present utility model.

Claims

1. A silicone oil running device, characterized in that: include A base (1), the base (1) is connected to the inner and outer barrels (2), and a connecting cover (3) is detachably provided on the top of the outer barrel (2); An inner barrel (5), the inner barrel (5) being located inside the outer barrel (2), a cavity (6) being arranged between the outer wall of the inner barrel (5) and the inner wall of the outer barrel (2), and an exhaust pipe (7) and an intake pipe (8) being arranged on the outer barrel (2) and being in communication with the cavity (6); A suction cup (9), the suction cup (9) is connected to the base (1), and the suction cups (9) are distributed in a circular array around the center of the base (1); an annular groove (103) is provided on the base (1), and a plurality of through holes (104) are provided on the base (1), and the through holes (104) are connected to the suction cups (9) in the annular groove (103); and an annular plate (10), the annular plate (10) being located in the annular groove (103) and rotatably connected thereto, and the annular plate (10) being provided with a plurality of air-permeable grooves (1001) communicating with the outside and corresponding through holes (104).

2. A silicone oil running device according to claim 1, characterized in that: A groove (101) is arranged at the bottom of the base (1), and a convex shoulder (301) is arranged at the top of the connecting cover (3), wherein the width and height of the convex shoulder are the same as those of the groove (101).

3. A silicone oil running device according to claim 1, characterized in that: A downwardly opening receiving groove (102) is provided at the bottom of the base (1), each suction cup (9) is located in the receiving groove (102), and when the suction cup (9) is flattened, its lower end surface is on the same plane as the bottom surface of the base (1).

4. A silicone oil running device according to claim 1, characterized in that: A spiral plate (4) is disposed in the cavity (6), the inner side of the spiral plate (4) is connected to the outer wall of the inner barrel (5), and the outer side of the spiral plate (4) is connected to the inner wall of the outer barrel (2), so as to form a spiral channel in the cavity (6), and the exhaust pipe (7) and the intake pipe (8) are respectively located at two ends of the spiral channel.

5. A silicone oil running device according to claim 4, characterized in that: The distance between the exhaust pipe (7) and the base (1) is greater than the distance between the air intake pipe (8) and the base (1).

6. A silicone oil running device according to claim 1, characterized in that: A locking member is provided on the base (1) for preventing the annular plate (10) from freely rotating relative to the base (1). The locking member comprises a locking knob (11) and a stud. The stud is inserted into the annular groove (103) and is spirally connected to the base (1).

7. A silicone oil running device according to claim 1, characterized in that: A patch-type temperature sensor for monitoring the temperature of the inner barrel (5) is arranged on the outer wall thereof, a control component connected to the patch-type temperature sensor is arranged in the base (1), a wireless module for sending a temperature signal to a control center is arranged in the base (1), and the wireless module is electrically connected to the control component.

Citation Information

Patent Citations

  • Silicone oil storage equipment

    CN209192657U