Temperature detection device for yeast stack of yeast bin

By setting fixed components and tensioning parts at the top and bottom of the crank compartment, combined with an overload separation connector, the problems of damage and displacement during the entry and exit of the crank block in traditional devices are solved, thus achieving stability and safety in temperature detection.

CN224034809UActive Publication Date: 2026-03-24KWEICHOW MOUTAI COMPANY
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-27
Publication Date
2026-03-24

AI Technical Summary

Technical Problem

Traditional temperature detection devices for curved blocks are prone to damage or decreased temperature measurement accuracy during the process of curved blocks entering and leaving the chamber, and the lack of stable support in hoisted devices leads to temperature measurement deviation.

Method used

The temperature sensor is fixed by first and second fixing components, kept in a stable position by a tensioning element, and disconnected by an overload disconnect connector when the external force exceeds a threshold, reducing the risk of damage.

Benefits of technology

This improves the accuracy of temperature detection and the reliability of the device, reduces the risk of damage caused by external impacts, and ensures temperature measurement accuracy and safety.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model belongs to the technical field of wine brewing, and particularly relates to a temperature detection device for a yeast stack of a yeast bin. According to the temperature detection device for the curved stack of the curved bin, the tensioning piece is kept in the longitudinal tensioning state in the using process and is used for providing a stable installation reference of the temperature sensor, the position deviation of the temperature sensor caused by the height change of the curved stack is effectively avoided, and therefore the accuracy of temperature detection is improved. The overload separation connector is used for being automatically disconnected when the tensile force acting on the tensioning piece exceeds a preset threshold value, and then a force transmission path between the tensioning piece and the second fixing assembly is cut off after disconnection, so that the risk that the curved block causes structural damage to the temperature detection device in the warehouse entering and exiting operation is reduced. And the reliability and the safety of the temperature detection device are improved.
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Description

TECHNICAL FIELD

[0001] The application belongs to the technical field of brewing, and particularly relates to a temperature detection device for koji warehouse koji stacking. BACKGROUND

[0002] Traditional temperature detection devices mainly include ground-mounted and hoisted types. The ground-mounted type is prone to impact damage during koji block warehousing or collision with forklifts during koji block warehousing, resulting in temperature detection failure or precision decline. The hoisted type is only fixed at the upper end of the floor, and the lower end is suspended, lacking stable support, so that the temperature detection probe position deviates during the gradual increase of koji stacking height, thereby affecting temperature detection accuracy. CONTENT OF THE UTILITY MODEL

[0003] An application purpose of the present application is to provide a temperature detection device for koji warehouse koji stacking, which can realize stable fixation of the temperature sensor position, improve temperature detection accuracy, and effectively reduce damage risk caused by external force impact through an overload separation connector, thereby enhancing the reliability and safety of the device.

[0004] According to an embodiment of the present application, a first aspect provides a temperature detection device for koji warehouse koji stacking, which comprises:

[0005] A first fixing assembly adapted to be installed at the upper part of the koji warehouse;

[0006] A second fixing assembly adapted to be installed at the lower part of the koji warehouse;

[0007] A tensioning member, the upper end of which is connected with the first fixing assembly, and the lower end of which extends to the second fixing assembly, the tensioning member being kept in a tensioning state between the first fixing assembly and the second fixing assembly in a use state;

[0008] A temperature sensor fixed at a predetermined temperature detection position of the tensioning member;

[0009] An overload separation connector connected in series between the tensioning member and the second fixing assembly, the overload separation connector being configured to automatically separate when the tensile force acting on the overload separation connector exceeds a predetermined threshold, so as to disconnect the force transmission between the tensioning member and the second fixing assembly.

[0010] In an embodiment, the overload separation connector comprises a first magnetic attraction member and a second magnetic attraction member that cooperate with each other.

[0011] In an embodiment, a first buffer member is arranged between the first fixing assembly and the tensioning member.

[0012] In one embodiment, a second buffer member is provided between the first fixing component and the temperature sensor.

[0013] In one embodiment, both the first buffer member and the second buffer member are tension springs.

[0014] In one embodiment, a tightening mechanism is provided between the second fixing component and the tensioning member, and the overload separation connector is disposed between the tightening mechanism and the second fixing component.

[0015] In one embodiment, a fastener is further provided between the temperature sensor and the tensioning member, the fastener being used to keep the temperature sensor in the position of the tensioning member.

[0016] In one embodiment, the temperature detection device further includes a third fixing component and a protective rope. The third fixing component is installed on the upper part of the crankcase, and the protective rope is disposed on the third fixing component and connected to the tensioning member.

[0017] In one embodiment, the temperature detection device further includes a hook for mounting on the crankcase sidewall and for accommodating the tensioner.

[0018] In one embodiment, the tensioning element is a chain.

[0019] The temperature detection device for curved blocks in this application maintains longitudinal tension during use through a tensioning component, providing a stable mounting reference for the temperature sensor. This effectively prevents sensor position shift due to changes in the height of the curved blocks, thereby improving the accuracy of temperature detection. The overload disconnect connector automatically disconnects when the tensile force on the tensioning component exceeds a preset threshold. Disconnection cuts off the force transmission path between the tensioning component and the second fixing component, reducing the risk of structural damage to the temperature detection device during curved block loading and unloading operations, and enhancing the reliability and safety of the temperature detection device. Attached Figure Description

[0020] Figure 1 This is a schematic diagram of the structure of a temperature detection device in one embodiment of this application;

[0021] Figure 2 for Figure 1 A magnified view of a portion of point A in the middle;

[0022] Figure 3 for Figure 1 A magnified view of a portion of point B in the middle;

[0023] Figure 4 This is a schematic diagram of the temperature detection device in another embodiment of this application;

[0024] Figure 5 For Figure 4 A local enlarged schematic view at C.

[0025] Brief Description of the Drawings:

[0026] 110, first fixing assembly; 120, second fixing assembly; 130, third fixing assembly;

[0027] 140, protection rope; 150, hook;

[0028] 200, tensioning member; 210, fastener;

[0029] 300, temperature sensor;

[0030] 400, overload release connector; 410, first magnetic attraction member; 420, second magnetic attraction member;

[0031] 510, first buffer member; 520, second buffer member; 530, tightening mechanism. DETAILED DESCRIPTION

[0032] In order to make the objects, technical solutions and advantages of the present application clearer, the present application will be further described in detail below with reference to the drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present application and not intended to limit the present application.

[0033] It should be noted that the diagrams provided in the embodiments only schematically illustrate the basic concept of the present application.

[0034] The structures, proportions, sizes, etc. shown in the drawings attached to the present specification are only used to cooperate with the content disclosed in the present specification, so that people skilled in the art can understand and read, and are not intended to limit the implementation conditions of the present application. Any modification of structure, change of proportion relationship or adjustment of size, which does not affect the functions and purposes that the present application can produce, should still fall within the scope of the technical content disclosed by the present application.

[0035] The orientations or positional relationships indicated by terms such as "upper", "lower", "left", "right", "intermediate", "vertical", "horizontal", "inner", "outer", "radial", "circumferential", etc. in the present specification are based on the orientations or positional relationships shown in the drawings, and are only used to simplify the description, and are not intended to indicate or imply that the device or element referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as limiting the present application. In addition, the terms "first", "second", etc. are only used for descriptive purposes, and cannot be understood as indicating or implying relative importance.

[0036] As described in the background, the traditional temperature measuring device mainly includes two forms of ground-mounted and suspended. The ground-mounted is easy to be damaged by impact in the process of stacking the blocks, or be collided by the forklift in the process of unstacking the blocks, resulting in failure or precision decline of temperature measuring function. The suspended type is fixed at the upper end of the floor and the lower end is suspended, lacking stable support, resulting in the displacement of temperature measuring probe position during the process of gradually increasing the height of the block stack, and then affecting the temperature measuring accuracy. In order to better solve this problem, the researchers in the present application propose a temperature detection device for block stack in block warehouse, which can realize stable fixation of temperature sensor position, improve temperature measuring accuracy, and effectively reduce the damage risk caused by external impact through overload separation connector 400, enhance the reliability and safety of the device.

[0037] As Figure 1 shown, Figure 1 is a structural schematic diagram of the temperature detection device in an embodiment of the present application. The temperature detection device includes a first fixing assembly 110 arranged on the upper part of the block warehouse, a second fixing assembly 120 arranged on the lower part of the block warehouse, a tensioning member 200 in tensioning state between the first fixing assembly 110 and the second fixing assembly 120, a temperature sensor 300 fixed at the predetermined temperature measuring position of the tensioning member 200, and an overload separation connector 400 arranged in series between the tensioning member 200 and the second fixing assembly 120. The first fixing assembly 110 and the second fixing assembly 120 are used for positioning and pulling the tensioning member 200, so that the tensioning member 200 always maintains a tensioning state during use, forming a stable temperature measuring reference structure. The temperature sensor 300 is arranged at the predetermined position of the tensioning member 200, which is used to obtain temperature information at different height positions of the block stack, and meets the detection requirement of temperature distribution in the block warehouse. The overload separation connector 400 is used to automatically disconnect when the tensioning member 200 suffers a tensile force exceeding the set threshold, so as to cut off the force transmission path between the tensioning member 200 and the second fixing assembly 120, thereby reducing the damage risk of the device when abnormal impact occurs during block handling or stacking.

[0038] Specifically, the first fixing assembly 110 is adapted to be installed on the upper part of the curved bin; the second fixing assembly 120 is adapted to be installed on the lower part of the curved bin; the upper end of the tensioning member 200 is connected with the first fixing assembly 110, the lower end of the tensioning member 200 extends to the second fixing assembly 120, and the tensioning member 200 is kept in a tensioning state between the first fixing assembly 110 and the second fixing assembly 120 in the use state; the temperature sensor 300 is fixed on a predetermined temperature measuring position of the tensioning member 200; the overload separation connector 400 is arranged in series between the tensioning member 200 and the second fixing assembly 120, and the overload separation connector 400 is configured to automatically separate when the tensile force acting on the overload separation connector 400 exceeds a predetermined threshold, so as to disconnect the force transmission between the tensioning member 200 and the second fixing assembly 120. Wherein, the first fixing assembly 110 and the second fixing assembly 120 can be plate-shaped structures, the tensioning member 200 can be a chain or a steel cable, and the connection between the tensioning member 200 and the first fixing assembly 110 and the second fixing assembly 120 can adopt a lock buckle connection mode.

[0039] In the embodiment, by arranging the first fixing assembly 110 on the upper part of the curved bin and the second fixing assembly 120 on the lower part of the curved bin, and connecting the upper end of the tensioning member 200 to the first fixing assembly 110 and extending the lower end of the tensioning member 200 to the second fixing assembly 120, the tensioning member 200 is kept in a tensioning state between the first fixing assembly 110 and the second fixing assembly 120. The temperature sensor 300 is fixed on a predetermined temperature measuring position of the tensioning member 200, and the tensioning action of the tensioning member 200 helps to maintain the position of the temperature sensor 300 stable during the gradual accumulation of the curved pile, thereby improving the data accuracy in the temperature detection process.

[0040] In addition, the overload separation connector 400 is arranged between the tensioning member 200 and the second fixing assembly 120, and when the tensile force applied to the tensioning member 200 during the process of the curved block entering or leaving the bin exceeds the preset threshold, the overload separation connector 400 can automatically separate to cut off the force transmission path between the tensioning member 200 and the second fixing assembly 120, thereby reducing the risk of structural damage of the tensioning member 200 or damage and failure of the temperature sensor 300 caused by external impact to a certain extent.

[0041] In an embodiment, referring to Figure 3 As shown in the figure, the overload separation connector 400 includes a first magnetic attraction member 410 and a second magnetic attraction member 420 that cooperate with each other.

[0042] In the embodiment, by setting the first magnetic attraction member 410 and the second magnetic attraction member 420 in the overload separation connector 400, when the tensile force applied on the tensioning member 200 does not exceed the preset tensile force threshold, the first magnetic attraction member 410 and the second magnetic attraction member 420 maintain the magnetic attraction state, thereby maintaining the force transmission relationship between the tensioning member 200 and the second fixed assembly 120, so as to keep the temperature sensor 300 at the predetermined temperature measurement position, and ensure the normal temperature measurement function of the temperature detection device. When the tensile force applied on the tensioning member 200 by the curved block during the in-and-out process of the storage bin exceeds the preset tensile force threshold, the magnetic attraction connection between the first magnetic attraction member 410 and the second magnetic attraction member 420 is broken, the overload separation connector 400 is automatically disconnected, and the force transmission between the tensioning member 200 and the second fixed assembly 120 is disconnected, thereby reducing the risk of damage to the device caused by external impact.

[0043] In an embodiment, referring to FIG. 1, a first fixed assembly 110 is arranged between the tensioning member 200 and the temperature sensor 300. Figure 2 As shown in FIG. 1, a first buffer member 510 is arranged between the first fixed assembly 110 and the tensioning member 200.

[0044] In the embodiment, by arranging the first buffer member 510 between the first fixed assembly 110 and the tensioning member 200, the first buffer member 510 provides a structural buffering function during the installation of the tensioning member 200, thereby realizing the installation position adjustment function of the tensioning member 200 relative to the first fixed assembly 110. The arrangement of the first buffer member 510 can compensate for the positional deviation caused by the installation tolerance, the length error of the tensioning member 200, or the installation angle deviation of the tensioning member 200, thereby improving the installation adaptability between the tensioning member 200 and the first fixed assembly 110 in the tensioning state. In addition, when the tensioning member 200 is subjected to external force, the first buffer member 510 can also provide a buffering force to weaken the impact of the external force transmitted to the first fixed assembly 110 through the tensioning member 200, thereby reducing the risk of falling of the first fixed assembly 110. In the embodiment, the first buffer member 510 can be a tension spring.

[0045] In an embodiment, referring to FIG. 1, a first fixed assembly 110 is arranged between the tensioning member 200 and the temperature sensor 300. Figure 2 As shown in FIG. 1, a second buffer member 520 is arranged between the first fixed assembly 110 and the temperature sensor 300.

[0046] In the embodiment, the second buffering member 520 can provide a position adjustment function during the installation of the temperature sensor 300 to the tensioning member 200, so as to realize the position adaptation capability of the temperature sensor 300 on the tensioning member 200, and meet the positioning requirement of the temperature sensor 300 under different installation conditions. Further, the second buffering member 520 can form a buffering structure when the temperature sensor 300 is subjected to an external force, so as to weaken the impact of the external force transmitted to the first fixing assembly 110 through the temperature sensor 300. In the embodiment, the second buffering member 520 can be a tension spring.

[0047] In an embodiment, referring to Figure 3 , a tightening mechanism 530 is arranged between the second fixing assembly 120 and the tensioning member 200, and the overload separation connector 400 is arranged between the tightening mechanism 530 and the second fixing assembly 120.

[0048] In the embodiment, the tightening mechanism 530 is arranged between the second fixing assembly 120 and the tensioning member 200, and the tightening mechanism 530 is used to adjust the tensioning state of the tensioning member 200, so as to ensure that the tensioning member 200 maintains stable tensioning in the use state, thereby keeping the temperature sensor 300 at a stable temperature measuring position under the working condition of the change of the pile height or the pile density of the curved pile, and further ensuring the effectiveness of the temperature detection data. Exemplarily, when the tensioning member 200 is a steel cable, the tightening mechanism 530 can be a steel wire rope tightening device.

[0049] In an embodiment, referring to Figure 1 , a fastener 210 is further arranged between the temperature sensor 300 and the tensioning member 200, and the fastener 210 is used to keep the temperature sensor 300 at a position of the tensioning member 200.

[0050] In the embodiment, the fastener 210 is arranged between the temperature sensor 300 and the tensioning member 200, and the fastener 210 is used to fix the temperature sensor 300 at a predetermined position on the tensioning member 200 during the installation. By fixing the temperature sensor 300 at the predetermined position on the tensioning member 200, the spatial positioning of the temperature sensor 300 can be kept stable under the working condition of the change of the pile height, the fluctuation of the pile density or the external disturbance, so as to ensure the constant temperature acquisition position, and improve the stability and accuracy of the temperature detection data. In the embodiment, the fastener 210 can be a buckle or a throat spring.

[0051] In an embodiment, referring to Figure 4 and Figure 5As shown, the temperature detection device further comprises a third fixing assembly 130 installed on the upper portion of the curved cabin and a protection rope 140 arranged on the third fixing assembly 130 and connected with the tensioning member 200.

[0052] In the embodiment, by arranging the third fixing assembly 130 on the upper portion of the curved cabin and connecting the protection rope 140 with the tensioning member 200, when the first fixing assembly 110 or the tensioning member 200 is detached due to abnormal conditions, the protection rope 140 can limit and constrain the tensioning member 200 through the connection with the third fixing assembly 130, thereby preventing the safety hazard caused by the overall falling of the tensioning member 200.

[0053] In an embodiment, referring to Figure 4 As shown, the temperature detection device further comprises a hook 150 arranged on the side wall of the curved cabin and used for accommodating the tensioning member 200.

[0054] In the embodiment, by arranging the hook 150 on the side wall of the curved cabin, the hook 150 is used for accommodating the tensioning member 200. When the temperature detection device is not in use, the operator can hang the tensioning member 200 on the hook 150, thereby effectively avoiding the device damage or potential safety hazard caused by the relaxation, swing or droop of the tensioning member 200.

[0055] The technical features of the above embodiments can be combined arbitrarily. In order to make the description concise, all possible combinations of the technical features in the above embodiments are not described, however, as long as the combinations of the technical features do not exist contradictory, they should be considered as the scope of the present disclosure.

[0056] The above embodiments only express several implementation manners of the present application, and the description is relatively specific and detailed, but it should not be understood as the limitation of the scope of the utility model patent. It should be pointed out that for ordinary skilled in the art, without departing from the concept of the present application, a number of modifications and improvements can be made, which all belong to the protection scope of the present application. Therefore, the protection scope of the patent of the present application should be subject to the appended claims.

Claims

1. A temperature detecting device for a curved bin curved stack, characterized in that, The temperature detection device comprises: A first fixing assembly (110) adapted to be mounted on the upper part of the curved cabin; A second fixing assembly (120) adapted to be mounted on the lower part of the curved cabin; A tensioning member (200), the upper end of which is connected to the first fixing assembly (110), and the lower end of which extends to the second fixing assembly (120), the tensioning member (200) being kept in tension between the first fixing assembly (110) and the second fixing assembly (120) in use; A temperature sensor (300) fixed at a predetermined temperature measurement position of the tensioning member (200); An overload separation connector (400) arranged in series between the tensioning member (200) and the second fixing assembly (120), the overload separation connector (400) being configured to automatically separate when the tensile force acting on the overload separation connector (400) exceeds a predetermined threshold, so as to disconnect the force transmission between the tensioning member (200) and the second fixing assembly (120).

2. The temperature detecting device according to claim 1, characterized by: The overload separation connector (400) comprises a first magnetic attraction member (410) and a second magnetic attraction member (420) that cooperate with each other.

3. The temperature detecting device according to claim 1, characterized by: A first buffer member (510) is arranged between the first fixing assembly (110) and the tensioning member (200).

4. The temperature detecting device according to claim 3, characterized by: A second buffer member (520) is arranged between the first fixing assembly (110) and the temperature sensor (300).

5. The temperature detecting device according to claim 4, characterized by: The first buffer member (510) and the second buffer member (520) are both tension springs.

6. The temperature detecting device according to claim 1, characterized by: A tightening mechanism (530) is arranged between the second fixing assembly (120) and the tensioning member (200), and the overload separation connector (400) is arranged between the tightening mechanism (530) and the second fixing assembly (120).

7. The temperature detecting device according to claim 1, characterized by: A fastener (210) is further arranged between the temperature sensor (300) and the tensioning member (200), the fastener (210) being used to keep the temperature sensor (300) in place on the tensioning member (200).

8. The temperature detecting device according to claim 1, characterized by: The temperature detection device further comprises a third fixing assembly (130) and a protection rope (140), the third fixing assembly (130) being mounted on the upper part of the curved cabin, and the protection rope (140) being arranged on the third fixing assembly (130), the protection rope (140) being connected to the tensioning member (200).

9. The temperature detecting device according to claim 1, characterized by: The temperature detection device further comprises a hook (150) for being mounted on the side wall of the curved cabin, the hook (150) being used to accommodate the tensioning member (200).

10. The temperature detecting device according to claim 1, characterized by: The tensioning member (200) is a padlock.