Telescopic temperature measurement assembly self-adaptive to height of fermentation mud

By designing a telescopic temperature measurement component with adaptive fermentation mud height, the problem of oxygen entering the cellar mud during puncture of the temperature measuring rod is solved, and effective protection of the fermentation environment and temperature monitoring are achieved.

CN223021385UActive Publication Date: 2025-06-24SICHUAN LANGJIU CO LTD
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Patent Information

Application Number
CN202421858917.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-02
Publication Date
2025-06-24
Estimated Expiration
2034-08-02

AI Technical Summary

Technical Problem

In the prior art, when the temperature measuring rod pierces into the cellar mud, oxygen will enter, affecting the fermentation effect.

Method used

A telescopic temperature measurement assembly with adaptive fermentation mud height is designed, including a floating member, a temperature measuring rod and a connecting sleeve. The temperature measuring rod can slide freely in the connecting sleeve, and the floating member can adaptively move with the mud surface to avoid exposure of the temperature measuring rod to the mud surface.

Benefits of technology

It effectively prevents oxygen from entering the cellar mud, protects the fermentation environment, and ensures the fermentation effect. The temperature measuring rod remains motionless at the predetermined position and continues to monitor the temperature.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a telescopic temperature measuring assembly self-adaptive to the height of fermentation mud. The telescopic temperature measuring assembly comprises but not limited to a floating piece, a temperature measuring rod and a connecting sleeve. The connecting sleeve is arranged on the floating piece, one end of the temperature measuring rod is arranged in the connecting sleeve in a sleeved mode, and the temperature measuring rod can freely slide relative to the connecting sleeve. According to the scheme, the temperature measuring rod is inserted into the pit, the floating piece is in contact with the mud surface of the fermentation mud at the moment, and the temperature measuring rod can freely slide in the connecting sleeve, so that the floating piece can adaptively move downwards along with the mud surface after the fermentation mud is fermented for a period of time, and the temperature measuring rod is prevented from being exposed after being inserted into the mud surface of the fermentation mud; therefore, air is prevented from entering the fermentation mud to influence the fermentation mud, and the temperature measuring rod is basically kept still at the preset position, so that the temperature of the preset position is continuously monitored.
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Description

Technical Field

[0001] The utility model relates to the field of wine body fermentation, in particular to a telescopic temperature measuring component with self - adapting fermentation mud height. Background Art

[0002] When fermenting the cellar mud in a wine cellar, it is necessary to measure the temperature of the lowest layer, the highest layer and the middle layer of the cellar mud. Usually, the device used is a temperature measuring rod. However, when the temperature measuring rod penetrates into the cellar mud, a notch will be formed on the contact part between the temperature measuring rod and the cellar mud, resulting in oxygen entering the cellar mud. Since anaerobic fermentation is required in the early stage of fermentation, the excessive entry of oxygen will affect the fermentation effect. Content of the Utility Model

[0003] The purpose of the utility model is to provide a telescopic temperature measuring component with self - adapting fermentation mud height to solve the problem that oxygen is introduced into the cellar mud when the temperature measuring rod penetrates into the cellar mud in the prior art.

[0004] The utility model is realized by the following scheme:

[0005] A telescopic temperature measuring component with self - adapting fermentation mud height includes, but is not limited to, a floating member, a temperature measuring rod and a connecting sleeve; the connecting sleeve is arranged on the floating member, one end of the temperature measuring rod is sleeved in the connecting sleeve, and the temperature measuring rod can freely slide relative to the connecting sleeve.

[0006] Based on the structure of the above - mentioned telescopic temperature measuring component with self - adapting fermentation mud height, a through - hole connected to the connecting sleeve is arranged at the center of the floating member; the connecting sleeve is integrally connected to the floating member through the through - hole.

[0007] Based on the structure of the above - mentioned telescopic temperature measuring component with self - adapting fermentation mud height, a resisting seat is arranged at the bottom of the connecting sleeve, a first connecting hole for connecting the temperature measuring rod is arranged in the resisting seat, a first sealing groove is arranged at the circumferential position of the first connecting hole, and a first sealing ring is arranged in the first sealing groove.

[0008] Based on the structure of the above - mentioned telescopic temperature measuring component with self - adapting fermentation mud height, one end of the resisting seat is in a frustum - shaped structure, and the other end is in a cylindrical structure. The end of the cylindrical structure is sleeved at the bottom of the connecting sleeve and extends into the connecting sleeve for a certain distance.

[0009] Based on the structure of the above - mentioned telescopic temperature measuring component with self - adapting fermentation mud height, a supporting base is arranged at the end of the temperature measuring rod sleeved in the connecting sleeve. A central through - slot for the temperature measuring rod to penetrate is arranged at the center of the supporting base, and the temperature measuring rod is fixedly connected to the supporting base by passing through the central through - slot.

[0010] Based on the structure of the telescopic temperature measuring component with adaptive fermentation mud height described above, the support base includes a sliding part and a guiding part. The guiding part is arranged at the central position of the sliding part and extends a predetermined distance in the direction away from the sliding part. The cross-section of the sliding part is an overall circular structure with a size adapted to the size of the connecting sleeve.

[0011] Based on the structure of the telescopic temperature measuring component with adaptive fermentation mud height described above, a second sealing groove is provided on the contact part of the sliding part with the connecting sleeve, and a second sealing ring is arranged in the second sealing groove.

[0012] Based on the structure of the telescopic temperature measuring component with adaptive fermentation mud height described above, the temperature measuring rod includes a rod body part, a temperature sensor and a signal transmitter; the rod body part is hollow, and the temperature sensors are uniformly arranged in multiple numbers along the length direction of the rod body part. The signal transmitter is connected to the temperature sensors through a circuit, and the signal transmitter is arranged at the end of the temperature measuring rod in the connecting sleeve.

[0013] Based on the structure of the telescopic temperature measuring component with adaptive fermentation mud height described above, the rod body part is hollow, and a circuit is arranged inside to connect the signal transmitter and the temperature sensors; the rod body part includes an upper rod body and a lower rod body, and the upper rod body and the lower rod body are detachably connected.

[0014] Based on the structure of the telescopic temperature measuring component with adaptive fermentation mud height described above, a contact ring is arranged at the bottom of the floating part. The contact ring is coaxially arranged with the center of the communicating sleeve, so that the contact ring is sleeved outside the connecting sleeve; a curled edge part is arranged at the end of the contact ring away from the floating part, and the curled edge part is an overall upward-opening arc structure.

[0015] In summary, due to the adoption of the above technical solutions, the beneficial effects of the present utility model are:

[0016] 1. Through this solution, the temperature measuring rod is inserted into the cellar pool. At this time, the floating part is in contact with the mud surface of the fermentation mud. Since the temperature measuring rod can slide freely in the connecting sleeve, after the fermentation mud ferments for a period of time, the floating part can move downward adaptively with the mud surface, avoiding the exposure of the temperature measuring rod at the mud surface of the fermentation mud, thereby preventing air from entering and affecting the fermentation mud, while the temperature measuring rod remains basically stationary at a predetermined position and continuously monitors the temperature at the predetermined position. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 is a three-dimensional structural schematic diagram of the whole of the present utility model;

[0018] Figure 2 is a cross-sectional structural schematic diagram of the whole of the present utility model;

[0019] Figure 3It is a schematic structural diagram of the crimped part in the present utility model;

[0020] Description of the drawings: 1. Floating member; 2. Temperature measuring rod; 3. Connecting sleeve; 4. Through hole; 21. Rod body part; 22. Temperature sensor; 23. Signal transmitter; 24. Upper rod body; 25. Lower rod body; 31. Contact seat; 32. First connection hole; 33. First sealing groove; 34. First sealing ring; 35. Support base; 36. Central through groove; 37. Sliding part; 38. Guide part; 39. Second sealing groove; 310. Second sealing ring; 311. Contact ring; 312. Crimped part. Detailed implementation manners

[0021] All the features disclosed in this specification, or all the steps in the disclosed methods or processes, except for mutually exclusive features and / or steps, can be combined in any manner.

[0022] Any feature disclosed in this specification (including any additional claims, abstract) can be replaced by other equivalent or similar-purpose alternative features unless specifically stated. That is, unless specifically stated, each feature is only an example of a series of equivalent or similar features.

[0023] In the description of the present utility model, it should be understood that the orientation or positional relationship indicated by the terms "upper", "lower", "left", "right", etc. is based on the orientation or positional relationship shown in the drawings, and is only for the convenience of describing the present utility model and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation to the present utility model.

[0024] In addition, the terms "first", "second", etc. are only used for descriptive purposes and cannot be understood as indicating or implying relative importance or implicitly indicating the quantity of the indicated technical features. Thus, the features defined with "first", "second", etc. may explicitly or implicitly include one or more of such features.

[0025] Embodiment 1

[0026] As Figures 1 to 3 shown, a telescopic temperature measuring assembly for adapting to the height of fermented mud includes at least but is not limited to a floating member 1, a temperature measuring rod 2, and a connecting sleeve 3; the connecting sleeve 3 is arranged on the floating member 1, and one end of the temperature measuring rod 2 is sleeved in the connecting sleeve 3, and the temperature measuring rod 2 can slide freely relative to the connecting sleeve 3.

[0027] Based on the above structure, when using this device, the temperature measuring rod 2 is inserted into the cellar pool. At this time, the floating member 1 contacts the mud surface of the fermented mud. Since the temperature measuring rod 2 can slide freely in the connecting sleeve 3, after the fermented mud ferments for a period of time, the floating member 1 can move downward adaptively along with the mud surface, preventing the temperature measuring rod 2 from being exposed at the mud surface of the fermented mud, thereby avoiding air from entering and affecting the fermented mud. The temperature measuring rod 2 remains basically stationary at a predetermined position and continuously monitors the temperature at the predetermined position.

[0028] As an example, a through hole 4 connected to the connecting sleeve 3 is provided at the center of the floating member 1; the connecting sleeve 3 is integrally connected to the floating member 1 through the through hole 4.

[0029] Based on the above structure, when installing the temperature measuring rod 2, first, the temperature measuring rod 2 needs to be inserted into the cellar mud. At this time, the temperature measuring rod 2 will be subject to resistance and slide relative to the connecting sleeve 3, and the end of the temperature measuring rod 2 away from the fermented mud will move to a higher position. At this time, an auxiliary tool needs to pass through the through hole 4 to push the temperature measuring rod 2 to the lowest position of the connecting sleeve 3 to provide a floating space for the floating of the floating member 1.

[0030] As an example, a contact seat 31 is provided at the bottom of the connecting sleeve 3. A first connection hole 32 for connecting the temperature measuring rod 2 is provided in the contact seat 31. A first sealing groove 33 is provided at the circumferential position of the first connection hole 32, and a first sealing ring 34 is provided in the first sealing groove 33.

[0031] One end of the contact seat 31 has a frustum-shaped structure, and the other end has a cylindrical structure. The end of the cylindrical structure is sleeved on the bottom of the connecting sleeve 3 and extends into the connecting sleeve for a certain distance.

[0032] Based on the above structure, setting the first sealing ring 34 at the bottom of the contact seat 31 can ensure that gas does not enter the cellar mud when the temperature measuring rod 2 slides. At the same time, the contact seat 31 extending into the connecting sleeve 3 for a certain distance provides a lower limit for the temperature measuring rod 2.

[0033] As an example, a support base 35 is provided at the end of the temperature measuring rod 2 sleeved in the connecting sleeve 3. A central through groove 36 for the temperature measuring rod 2 to pass through is provided at the center of the support base 35. The temperature measuring rod 2 is fixedly connected to the support base 35 by passing through the central through groove 36;

[0034] The support base 35 may include a sliding portion 37 and a guiding portion 38. The guiding portion 38 is provided at the central position of the sliding portion 37 and extends a predetermined distance in a direction away from the sliding portion 37. The cross-section of the sliding portion 37 is generally a circular structure with a size adapted to the size of the connecting sleeve 3.

[0035] A second sealing groove 39 may be provided on the contact portion of the sliding portion 37 with the connecting sleeve 3, and a second sealing ring 310 may be provided in the second sealing groove 39.

[0036] Based on the above structure, through the sliding portion 37, the smooth movement between the temperature measuring rod 2 and the connecting sleeve 3 can be achieved. Meanwhile, by setting the second sealing ring 310, the sealing performance of the connection can be further ensured, preventing the air in the connecting sleeve 3 from entering the bottom pit mud; the guiding portion 38 can increase the contact area between the abutting seat 31 and the temperature measuring rod 2, avoiding the deflection of the temperature measuring rod 2 and the connecting sleeve 3 when they move relatively.

[0037] As an example, the temperature measuring rod 2 may include a rod body portion 21, a temperature sensor 22, and a signal transmitter 23; the rod body portion 21 is hollow, the temperature sensors 22 are uniformly arranged in multiple numbers along the length direction of the rod body portion 21, the signal transmitter 23 is connected to the temperature sensor 22 through a circuit, and the signal transmitter 23 is arranged at the end of the temperature measuring rod 2 in the connecting sleeve 3.

[0038] Based on the above structure, the temperature sensor 22 is used to detect the temperature of the fermented mud at different heights. The temperature sensor 22 transmits the measured data to the signal transmitter 23, and the signal transmitter 23 sends the temperature data to the receiver of the on-site operator for transmission in a wireless transmission mode, reducing the overall complexity of the circuit.

[0039] As an example, the rod body portion 21 is hollow, and a circuit is provided inside to connect the signal transmitter 23 and the temperature sensor 22. By setting it hollow, an installation space is provided for the internal circuit.

[0040] As an example, the rod body portion 21 includes an upper rod body 24 and a lower rod body 25, and the upper rod body 24 and the lower rod body 25 are detachably connected.

[0041] Based on the above structure, by setting the rod body portion 21 to be detachably connected, on the one hand, the floor area of the entire rod body portion 21 can be reduced, facilitating storage; on the other hand, the split rod body portion 21 can also reduce the maintenance difficulty and facilitate the maintenance of the connecting sleeve 3 and the end of the rod body portion 21.

[0042] As an example, a contact ring 311 may be provided at the bottom of the floating member 1, and the contact ring 311 is coaxially arranged with the center of the communicating sleeve, so that the contact ring 311 is sleeved outside the connecting sleeve 3.

[0043] Based on the above structure, through the contact ring 311, when the floating member 1 contacts the surface of the pit mud, it can be inserted into the pit mud, increasing the contact area between the floating member 1 and the pit mud, and making the connection between the floating member 1 and the pit mud tighter.

[0044] As an example, a curled edge portion 312 is provided at the end of the contact ring 311 away from the floating member 1, and the curled edge portion 312 is an arc-shaped structure with an upward opening as a whole.

[0045] Based on the above structure, when the floating member 1 is in contact with the pit mud, the curled edge portion 312 will push aside part of the pit mud. When the curled edge portion 312 is inserted into the pit mud, the upper space of the curled edge portion 312 will be filled with the flowing pit mud, further increasing the connection tightness between the floating member 1 and the pit mud.

[0046] As an example, the end of the rod body portion 21 away from the floating member 1 is provided with a sharp structure, so that it can be quickly inserted into the pit mud.

[0047] The above are only the preferred embodiments of the present invention and are not intended to limit the present invention. Any modifications, equivalent replacements, and improvements made within the spirit and principle of the present invention shall be included within the protection scope of the present invention.

Claims

1. A telescopic temperature measuring component that is self-adaptive to the height of fermented mud, characterized in that: It includes but is not limited to a floating part, a temperature measuring rod and a connecting sleeve; the connecting sleeve is arranged on the floating part, one end of the temperature measuring rod is sleeved in the connecting sleeve, and the temperature measuring rod can slide freely relative to the connecting sleeve.

2. The self-adaptive fermentation mud height telescopic temperature measuring component according to claim 1, characterized in that: A through hole connected to the connecting sleeve is arranged at the center of the floating member; the connecting sleeve is connected to the floating member as a whole through the through hole.

3. The self-adaptive fermentation mud height telescopic temperature measuring assembly according to claim 2, characterized in that: An abutment seat is arranged at the bottom of the connecting sleeve, a first connecting hole for connecting a temperature measuring rod is arranged in the abutment seat, a first sealing groove is arranged at a circumferential position of the first connecting hole, and a first sealing ring is arranged in the first sealing groove.

4. The self-adaptive fermentation mud height telescopic temperature measuring assembly according to claim 3, characterized in that: One end of the abutment seat is in a truncated cone structure, and the other end is in a cylindrical structure. The end of the cylindrical structure is sleeved on the bottom of the connecting sleeve and extends into the connecting sleeve for a distance.

5. The self-adaptive fermentation mud height telescopic temperature measuring assembly according to claim 4, characterized in that: A support base is arranged on the end of the temperature measuring rod which is sleeved on the connecting sleeve. A central through slot for the temperature measuring rod to pass through is arranged at the center of the support base. The temperature measuring rod is fixedly connected to the support base by passing through the central through slot.

6. The self-adaptive fermentation mud height telescopic temperature measuring assembly according to claim 5, characterized in that: The support base includes a sliding portion and a guide portion, wherein the guide portion is arranged at the center of the sliding portion and extends a predetermined distance away from the sliding portion, and the cross-section of the sliding portion is a circular structure whose size is adapted to the size of the connecting sleeve.

7. The self-adaptive fermentation mud height telescopic temperature measuring assembly according to claim 6, characterized in that: A second sealing groove is arranged on the contact portion of the sliding portion and the connecting sleeve, and a second sealing ring is arranged in the second sealing groove.

8. The self-adaptive fermentation mud height telescopic temperature measuring assembly according to claim 7, characterized in that: The temperature measuring rod includes a rod body, a temperature sensor and a signal transmitter; the rod body is hollow, and a plurality of temperature sensors are evenly arranged along the length direction of the rod body; the signal transmitter is connected to the temperature sensor through a line, and the signal transmitter is arranged on the end of the temperature measuring rod in the connecting sleeve.

9. The self-adaptive fermentation mud height telescopic temperature measuring assembly according to claim 8, characterized in that: The rod body is hollow and has a circuit inside that is connected to a signal transmitter and a temperature sensor; the rod body includes an upper rod body and a lower rod body, and the upper rod body and the lower rod body are detachably connected.

10. The telescopic temperature measuring assembly capable of self-adapting to the height of fermented mud according to any one of claims 1 to 9, characterized in that: A contact ring is provided at the bottom of the floating member, and the contact ring is coaxially arranged with the center of the connecting sleeve so that the contact ring is sleeved on the outside of the connecting sleeve; a curling portion is provided on the end of the contact ring away from the floating member, and the curling portion is an overall arc-shaped structure with an opening upward.