Remote monitoring device for cold-chain logistics management

By setting a defog mechanism on the edge of the frame guard of the cold chain logistics management remote monitoring device, and using the heat from the constant temperature conductive pole and the conductive silver layer to remove frost mist, the problems of inflexible steering of the monitoring body and poor quality of the monitoring picture are solved, and efficient remote monitoring is achieved.

CN120017946AInactive Publication Date: 2025-05-16GUANGDONG URBAN TECHNICIAN COLLEGE
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202510100644.6
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-01-22
Publication Date
2025-05-16
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The remote monitoring device in cold chain logistics management is difficult to flexibly turn the monitoring body due to fog accumulation and frost caused by temperature differences outside and inside, and the quality of the monitoring screen cannot be guaranteed.

Method used

A remote monitoring device for cold chain logistics management is designed, and a defog removal mechanism is provided with a fence edge, including a constant temperature conductive pole, a conductive silver layer, an additional belt, a roller and a traction structure. The defog removal mechanism is driven by the traction structure and heat to ensure the flexible steering of the monitoring body and high-quality monitoring screen.

Benefits of technology

Effectively remove frost and mist on the surface of the monitoring body, improve the flexibility of the device and the quality of the monitoring screen, and ensure the remote monitoring capability of cold chain logistics management.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120017946A_ABST
    Figure CN120017946A_ABST
Patent Text Reader

Abstract

A cold-chain logistics management remote monitoring device disclosed by the present invention structurally comprises a turntable, a base, a protection frame, demisting mechanisms and a monitoring body, the turntable is rotatably matched above the base, the top of the turntable is fixedly connected with the protection frame, the edge of the protection frame is provided with the two demisting mechanisms, and the interior of the protection frame is electrically connected with the monitoring body; a demisting mechanism is arranged on the edge of the protective frame, so that when the monitoring body monitors in a warehouse, the monitoring body can deflect and rotate in the protective frame to be pressed above a groove and press a constant-temperature conductive rod and a conductive silver layer in the protective frame, and the constant-temperature conductive rod can stretch and push a traction structure to be in lap joint with the conductive silver layer from an additional belt so as to be electrified and heated; and the roller outside the constant-temperature conducting rod can synchronously drive heat outside the constant-temperature conducting rod to the outside of the monitoring body, so that frost mist attached to the surface of the constant-temperature conducting rod is melted, the flexibility degree of turning the monitoring body to a designated area is also enhanced, and the remote monitoring capability of the device on cold-chain logistics management is ensured.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to the field of cold chain logistics, and in particular to a remote monitoring device for cold chain logistics management. Background Art

[0002] Cold chain logistics refers to a systematic project in which refrigerated and frozen foods are kept in a specified low-temperature environment throughout the production, storage, transportation, sales, and all stages before consumption to ensure food quality and reduce food loss. Frozen foods are stored in warehouses, and the cold chain storage environment generally needs to be remotely monitored through monitoring to observe the condition of frozen foods. When the monitoring body is monitoring in the warehouse, due to the temperature difference between the inside and outside, its outer surface will fog up and accumulate a layer of frost, causing the monitoring body to swing back and forth within the frame, and there will be obstructions such as jamming or overslipping, making it difficult for the monitoring body to flexibly turn to the required monitoring area, or even exceed its monitoring range, and the quality of its monitoring image cannot be guaranteed. Therefore, a remote monitoring device for cold chain logistics management is needed. Summary of the invention

[0003] In view of the above problems, the present invention provides a remote monitoring device for cold chain logistics management, which structure includes a turntable, a base, a protective frame, a defogging mechanism, and a monitoring body. The turntable is rotatably matched above the base, and the top of the turntable is fixedly connected to the protective frame. Two defogging mechanisms are provided on the edge of the protective frame, and the interior of the protective frame is electrically connected to the monitoring body. The demisting mechanism includes an additional belt, a roller, a traction structure, a constant temperature conductive rod, a groove, and a conductive silver layer. Two additional belts are provided, both of which are fixedly connected above the conductive silver layer, and the wrinkled surface of the additional belt is interference fit with the constant temperature conductive rod through the traction structure. The conductive silver layer and the constant temperature conductive rod are sleeved and connected in the middle of the groove opening of the groove. The groove is welded and connected to the edge of the guard frame, and a roller is installed on the outside of the constant temperature conductive rod.

[0004] As a further improvement of the present invention, the traction structure includes a push plate, a support bow, a handle, a limit plate, and a fixed seat. The push plate is fixedly connected to the arc-shaped depression of the handle, and the folding structure of the push plate is slidably fitted on the wrinkled surface of the additional belt through the support bow. The handle and the limit plate are movably engaged together, and the bottom of the handle and the limit plate are both connected to the end of the constant temperature conductive rod through the fixed seat.

[0005] As a further improvement of the present invention, the support bow includes a ball, a bow body, a telescopic belt, and a pressing piece. The ball is rotatably fitted in the middle of the fixed seat, and the bow body is hingedly connected to the outside of the ball. Pressing pieces are installed at both ends of the bow body.

[0006] As a further improvement of the present invention, the bow body is movably engaged under the folding structure of the push plate.

[0007] As a further improvement of the present invention, the pressing part includes a cross clamp, a running-in layer, a flat plate, and a clamping block. The cross clamp is fixedly connected to the two ends of the bow body and the back of the flat plate. The bottom of the flat plate is welded with a clamping block, and the clamping block is slidably fitted on the arc-shaped back of the fixed seat through the running-in layer.

[0008] As a further improvement of the present invention, the roller includes a positioning cover, an external ring, a perforation, a sleeve, and an insertion rod. The positioning covers are provided with three, which are installed in the middle of the external ring and the outside of the constant temperature conductive rod. A perforation is opened on the bottom edge of the external ring, and the external ring is rollingly fitted between the monitoring body and the conductive silver layer. A sleeve is fixedly connected inside the perforation, and an insertion rod is sleeved and connected between the sleeves.

[0009] As a further improvement of the present invention, the positioning cover includes a cover body, an inner ring, latch teeth, and an auxiliary belt. The interior of the cover body is provided with twisted stripes, which is fixedly connected between the outer ring and the inner ring. The inner part of the inner ring is provided with latch teeth through the auxiliary belt.

[0010] As a further improvement of the present invention, the built-in ring and the auxiliary belt are both made of a retractable and deformable gel-like material and are interference-fitted on the outside of the constant temperature conductive rod. Beneficial Effects

[0011] Compared with the prior art, the present invention has the following beneficial effects: The present invention utilizes a defogger mechanism on the edge of the protective frame. When the monitoring body is monitoring in the warehouse, it will rotate skewly inside the protective frame and be mortgaged on the top of the groove, pressing the constant temperature conductive rod and the conductive silver layer inside it, so that the constant temperature conductive rod will stretch and push the traction structure from the additional belt to the conductive silver layer, so as to better energize and generate heat, and the roller outside the constant temperature conductive rod will synchronously rotate to drive the heat outside the constant temperature conductive rod to the outside of the monitoring body, thereby melting the frost and fog attached to its surface, and also enhancing the flexibility of the monitoring body to turn to the designated area, ensuring the remote monitoring capability of the device for cold chain logistics management.

[0012] The invention causes the wrinkled surface of the additional belt to collapse when squeezed, and the hard pressing push plate slides on the wrinkled surface of the additional belt, and involves the constant temperature conductive rod to connect with the conductive silver layer to generate heat to remove frost and fog on the surface of the monitoring body.

[0013] Since the present invention has sleeves and plugs between the external rings, the spacing between the positioning covers can be adjusted to adapt to the rotation of the monitoring body, thereby improving the smoothness and flexibility of the monitoring body in turning, and also spacing the monitoring body and the conductive silver layer, which is helpful for dissipating heat on the conductive silver layer. BRIEF DESCRIPTION OF THE DRAWINGS

[0014] Figure 1 It is a structural schematic diagram of a cold chain logistics management remote monitoring device of the present invention.

[0015] Figure 2 It is a schematic diagram of the planar structure of the demisting mechanism of the present invention.

[0016] Figure 3 The present invention is Figure 2 A magnified schematic diagram of the structure of the middle traction structure.

[0017] Figure 4 It is a schematic diagram of the planar structure of the support bow of the present invention.

[0018] Figure 5 It is a schematic diagram of the planar structure of the pressing member of the present invention.

[0019] Figure 6 It is a schematic diagram of the three-dimensional structure of the roller of the present invention.

[0020] Figure 7 It is a schematic diagram of the top structure of the positioning cover of the present invention.

[0021] Figure 8 For the present invention Figure 7 Dynamic structural diagram of the positioning cover.

[0022] In the figure: turntable-3, base-1, protective frame-2, defogger mechanism-4, monitoring body-5, additional belt-4q, roller-4w, traction structure-4e, constant temperature conductive rod-4r, groove-4t, conductive silver layer-4y, push plate-e1, support bow-e2, handle-e3, limit plate-e4, fixed seat-e5, ball-e21, bow body-e22, telescopic belt-e23, pressing piece-e24, cross clamp-41, running-in layer-42, flat plate-43, clamping block-44, positioning cover-w1, external ring-w2, perforation-w3, sleeve-w4, plug-in rod-w5, cover body-w11, internal ring-w12, latch-w13, auxiliary belt-w14. DETAILED DESCRIPTION

[0023] Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in the field without making any creative work shall fall within the scope of protection of the present invention. Example

[0024] like Figure 1-Figure 5 As shown, the present invention provides a remote monitoring device for cold chain logistics management, which structure includes a turntable 3, a base 1, a protective frame 2, a defogger 4, and a monitoring body 5. The turntable 3 is rotatably matched above the base 1, and the top of the turntable 3 is fixedly connected to the protective frame 2. Two defogger mechanisms 4 are provided on the edge of the protective frame 2, and the protective frame 2 is electrically connected to the monitoring body 5; The demisting mechanism 4 includes an additional belt 4q, a roller 4w, a traction structure 4e, a constant temperature conductive rod 4r, a groove 4t, and a conductive silver layer 4y. Two additional belts 4q are provided, both of which are fixedly connected above the conductive silver layer 4y, and the wrinkled surface of the additional belt 4q is interference fit with the constant temperature conductive rod 4r through the traction structure 4e. The conductive silver layer 4y and the constant temperature conductive rod 4r are sleeved and connected in the middle of the groove opening of the groove 4t. The groove 4t is welded and connected to the edge of the protective frame 2, and a roller 4w is installed on the outside of the constant temperature conductive rod 4r.

[0025] The traction structure 4e includes a push plate e1, a support bow e2, a handle e3, a limit plate e4, and a fixed seat e5. The push plate e1 is fixedly connected to the arc-shaped depression of the handle e3, and the folding structure of the push plate e1 is slidably fitted on the wrinkled surface of the additional belt 4q through the support bow e2. The handle e3 and the limit plate e4 are movably engaged together, and the bottom of the handle e3 and the limit plate e4 are both connected to the end of the constant temperature conductive rod 4r through the fixed seat e5, so that the handle e3 and the limit plate e4 are retracted, and the push plate e1 can be pressed hard to slide on the wrinkled surface of the additional belt 4q, and the constant temperature conductive rod 4r and the conductive silver layer 4y are energized to generate heat to remove frost and fog on the surface of the monitoring body 5.

[0026] The supporting bow e2 includes a ball e21, a bow body e22, a retractable belt e23, and a pressing piece e24. The ball e21 is rotatably fitted in the middle of the fixing seat e5, and the bow body e22 is hingedly connected to the outside of the ball e21. Pressing pieces e24 are installed at both ends of the bow body e22.

[0027] The bow body e22 is movably engaged under the folding structure of the push plate e1, and can be expanded and contracted synchronously with the push plate e1, thereby enhancing the hardness of the push plate e1 pressing and pushing on the wrinkled surface of the additional belt 4q.

[0028] The pressing piece e24 includes a cross clamp 41, a running-in layer 42, a flat plate 43, and a clamp block 44. The cross clamp 41 is fixedly connected to both ends of the bow body e22 and the back of the flat plate 43. The clamp block 44 is welded to the bottom of the flat plate 43. The clamp block 44 is slidably fitted on the arc-shaped back of the fixing seat e5 through the running-in layer 42, so that the bow body e22 can support the push plate e1 in a fixed position in a force storage state.

[0029] Based on the above embodiment, the specific working principle is as follows: The monitoring body 5 is remotely controlled to turn to the designated position of the monitoring warehouse inside the guard frame 2, and can simultaneously squeeze the groove 4t on the edge of the guard frame 2, so that the constant temperature conductive rod 4r and the conductive silver layer 4y inside are synchronously squeezed and retracted into the groove 4t, so that the constant temperature conductive rod 4r can be stretched along the conductive silver layer 4y synchronously, and push the handle e3 and the limit plate e4 on the fixed seat e5 at its end, so that they can tilt each other and push the push plate e1 to the folded surface of the additional belt 4q, so that the folding structure of the push plate e1 is first unfolded, and then the bow body e22 is released. The pressure allows the bow body e22 to use the ball e21 as a fulcrum and come into contact between the push plate e1 and the additional belt 4q. It can swing and push the flat plates 43 at both ends, so that it drives the clamping block 44 to cooperate with the running-in layer 42 to be buckled outward on the back of the fixed seat e5, so that the bow body e22 can be supported on the bottom of the push plate e1 in a full bow and force storage state, which can help the push plate e1 to cross-press the folds of the additional belt 4q and direct it to the middle of the conductive silver layer 4y, so that it can be energized and heated, and the temperature of the internal monitoring body 5 on both sides of the protective frame 2 in the rotation direction can be increased in a heat transfer manner. Example

[0030] like Figure 6-Figure 8 As shown, on the basis of Example 1, the present invention combines the mutual cooperation of the following structural components, the roller 4w includes a positioning cover w1, an external ring w2, a perforation w3, a sleeve w4, and an insertion rod w5, the positioning cover w1 is provided with three, installed in the middle of the external ring w2 and the outside of the constant temperature conductive rod 4r, the bottom edge of the external ring w2 is provided with a perforation w3, and the external ring w2 is rollingly fitted between the monitoring body 5 and the conductive silver layer 4y, the perforation w3 is fixedly connected with a sleeve w4, and the sleeves w4 are sleeved with an insertion rod w5, which can adapt to the rotation of the monitoring body 5, improve the smoothness and flexibility of the monitoring body 5, and also separate the distance between the monitoring body 5 and the conductive silver layer 4y, which is conducive to the dissipation of heat on the conductive silver layer 4y.

[0031] The positioning cover w1 includes a cover body w11, an inner ring w12, latch teeth w13, and an auxiliary belt w14. The cover body w11 has twisted stripes inside and is fixedly connected between the outer ring w2 and the inner ring w12. The inner ring w12 is provided with latch teeth w13 through the auxiliary belt w14.

[0032] The built-in ring w12 and the auxiliary belt w14 are both made of a retractable and deformable gel material, and are interference-fitted on the outside of the constant temperature conductive rod 4r, thereby adaptively reducing their own sizes.

[0033] Based on the above embodiment, the specific working principle is as follows: When the monitoring body 5 turns, it will first roll over and contact the outside of the constant temperature conductive rod 4r, and will also drive the external ring w2 to slide downward along the outside of the constant temperature conductive rod 4r with the help of the latch w13 and the auxiliary belt w14 inside the internal ring w12, and the cover w11 outside the internal ring w12 will cooperate with the outside of the constant temperature conductive rod 4r to open to a certain size, and simultaneously press the external ring w2, so that the external ring w2 can push the pressing sleeve w4 and the plug w5, change the spacing between the external rings w2, and cooperate with the latch w13, so that the three external rings w2 can rotate at a fixed spacing outside the constant temperature conductive rod 4r, while driving the heat generated by the constant temperature conductive rod 4r and the conductive silver layer 4y in the groove 4t to the outside of the monitoring body 5, further removing frost and fog on the surface of the monitoring body 5, and also helping the flexibility of the monitoring body 5 to turn to the designated area, ensuring the remote monitoring capability of the device for cold chain logistics management.

[0034] The above shows and describes the basic principles and main features of the present invention and the advantages of the present invention. It is obvious to those skilled in the art that the present invention is not limited to the details of the above exemplary embodiments, and the present invention can be implemented in other specific forms without departing from the spirit or basic features of the present invention. Therefore, no matter from which point of view, the embodiments should be regarded as exemplary and non-restrictive. The scope of the present invention is defined by the attached claims rather than the above description, and it is intended that all changes falling within the meaning and scope of the equivalent elements of the claims are included in the present invention. Any figure mark in the claims should not be regarded as limiting the claims involved.

[0035] In addition, it should be understood that although the present specification is described according to implementation modes, not every implementation mode contains only one independent technical solution. This description of the specification is only for the sake of clarity. Those skilled in the art should regard the specification as a whole. The technical solutions in each embodiment may also be appropriately combined to form other implementation modes that can be understood by those skilled in the art.

Claims

1. A remote monitoring device for cold chain logistics management, characterized in that: The structure comprises a rotating disk (3), a base (1), a protective frame (2), a demisting mechanism (4), and a monitoring body (5); the rotating disk (3) is rotatably engaged above the base (1), and the top of the rotating disk (3) is fixedly connected to the protective frame (2); two demisting mechanisms (4) are provided on the edge of the protective frame (2), and the interior of the protective frame (2) is electrically connected to the monitoring body (5); The demisting mechanism (4) comprises an additional belt (4q), a roller (4w), a traction structure (4e), a constant temperature conductive rod (4r), a groove (4t), and a conductive silver layer (4y); two additional belts (4q) are provided, both of which are fixedly connected above the conductive silver layer (4y); the wrinkled surface of the additional belt (4q) is interference-fitted with the constant temperature conductive rod (4r) through the traction structure (4e); the conductive silver layer (4y) and the constant temperature conductive rod (4r) are sleeve-connected in the middle of the groove opening of the groove (4t); the groove (4t) is welded and connected to the edge of the protective frame (2); and the constant temperature conductive rod (4r) is externally mounted with a roller (4w).

2. A remote monitoring device for cold chain logistics management according to claim 1, characterized in that: The traction structure (4e) comprises a push plate (e1), a support bow (e2), a handle (e3), a limit plate (e4), and a fixed seat (e5); the push plate (e1) is fixedly connected to the arc-shaped recess of the handle (e3), and the folding structure of the push plate (e1) is slidably matched on the surface of the additional belt (4q) through the support bow (e2); the handle (e3) and the limit plate (e4) are movably engaged together, and the bottoms of the handle (e3) and the limit plate (e4) are sleeved and connected to the end of the constant temperature conductive rod (4r) through the fixed seat (e5).

3. A remote monitoring device for cold chain logistics management according to claim 2, characterized in that: The supporting bow (e2) comprises a sphere (e21), a bow body (e22), a retractable belt (e23), and a pressing piece (e24); the sphere (e21) is rotatably engaged in the middle of a fixing seat (e5), and the bow body (e22) is hingedly connected to the outside of the sphere (e21); and pressing pieces (e24) are installed at both ends of the bow body (e22).

4. A remote monitoring device for cold chain logistics management according to claim 3, characterized in that: The bow body (e22) is movably engaged under the folding structure of the push plate (e1).

5. A remote monitoring device for cold chain logistics management according to claim 3, characterized in that: The pressing member (e24) comprises a cross clamp (41), a running-in layer (42), a plane plate (43), and a clamping block (44); the cross clamp (41) is fixedly connected to both ends of the bow body (e22) and the back of the plane plate (43); the bottom of the plane plate (43) is welded with a clamping block (44); and the clamping block (44) is slidably fitted on the arc-shaped back of the fixing seat (e5) through the running-in layer (42).

6. A remote monitoring device for cold chain logistics management according to claim 1, characterized in that: The roller (4w) comprises a positioning cover (w1), an external ring (w2), a perforation (w3), a sleeve (w4), and an insertion rod (w5); three positioning covers (w1) are provided and are installed in the middle of the external ring (w2) and outside the constant temperature conductive rod (4r); a perforation (w3) is provided on the bottom edge of the external ring (w2), and the external ring (w2) is rollingly fitted between the monitoring body (5) and the conductive silver layer (4y); a sleeve (w4) is fixedly connected inside the perforation (w3), and an insertion rod (w5) is sleeved and connected between the sleeves (w4).

7. A remote monitoring device for cold chain logistics management according to claim 6, characterized in that: The positioning cover (w1) comprises a cover body (w11), an inner ring (w12), latch teeth (w13), and an auxiliary belt (w14); the cover body (w11) is fixedly connected between an outer ring (w2) and an inner ring (w12); and the inner ring (w12) is provided with latch teeth (w13) via an auxiliary belt (w14).

8. A remote monitoring device for cold chain logistics management according to claim 7, characterized in that: The built-in ring (w12) and the auxiliary belt (w14) are interference-fitted on the outside of the constant temperature conductive rod (4r).