Humanized programming Internet of Things controller

By using an internal circulation air cooling system and a tiered cooling air chamber, the problem of low heat dissipation efficiency of IoT controllers is solved, achieving efficient dust removal and tiered heat dissipation, extending equipment life, and ensuring stability and performance.

CN224111502UActive Publication Date: 2026-04-10JIAXING YAHANG INFORMATION TECH CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
JIAXING YAHANG INFORMATION TECH CO LTD
Filing Date
2025-03-06
Publication Date
2026-04-10

AI Technical Summary

Technical Problem

Existing IoT controllers have low natural heat dissipation efficiency when operating under high loads or in high ambient temperatures, leading to excessively high temperatures that affect device performance and stability.

Method used

It adopts an internal circulation air cooling system, including an S-shaped dust collection component and a graded cooling air chamber. Through electrostatic dust removal and dust agglomeration treatment, it ensures clean air and graded heat dissipation, avoids dust accumulation and blockage, and improves heat dissipation efficiency.

Benefits of technology

It effectively removes dust, extends the service life of equipment, ensures the normal operation of the heat dissipation system, improves equipment stability and heat dissipation efficiency, and prevents temperature rise.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224111502U_ABST
    Figure CN224111502U_ABST
Patent Text Reader

Abstract

The utility model relates to the related technical field of internet of things controllers, and discloses a user-friendly programming internet of things controller, which comprises an inner box cavity arranged in a control box, a port heat dissipation device with a heat dissipation function is fixedly arranged in the inner box cavity, four groups of heat dissipation air cavities are further arranged in the port heat dissipation device, and the heat dissipation air cavities are communicated with the inner box cavity. An S-shaped dust collection assembly is installed in the four sets of heat dissipation air cavities, an upper dust collection device is installed in the S-shaped dust collection assembly, the S-shaped dust collection assembly conducts internal circulation air heat dissipation on the whole controller equipment, and the upper dust collection device conducts electrostatic dust collection on dust of inlet air; the air pipe dust removal device is used for efficiently removing dust from inlet air, dust entering the controller equipment can be reduced, the problems of abrasion, short circuit and the like of internal elements of the equipment possibly caused by dust accumulation and influence on normal operation and the service life of the equipment can be solved, the air pipe dust removal device effectively removes dust, the risks are reduced, and the service life of the equipment is prolonged. Therefore, the service life of the controller equipment is prolonged.
Need to check novelty before this filing date? Find Prior Art

Description

TECHNICAL FIELD

[0001] The utility model belongs to the related technical field of internet of things controller, more specifically, it is particularly related to the internet of things controller of humanization programming. BACKGROUND

[0002] With the continuous development and popularization of internet technology, the concept of internet of things emerges as the times require. Internet of things aims to realize the interconnection between things and things, people and things, so that various devices and objects can collect, transmit and process data to provide more intelligent services and applications. However, the existing internet of things controller mainly adopts natural heat dissipation in use. Natural heat dissipation mainly relies on the natural convection and heat radiation between the surface of the equipment and the surrounding air to dissipate heat, and the heat dissipation efficiency is relatively low. In the case of high load operation of the internet of things controller or high ambient temperature, the natural heat dissipation may not be able to dissipate heat in time, resulting in high temperature of the controller, affecting its performance and stability.

[0003] Therefore, in view of the above, the existing structure and defects are improved, and the internet of things controller with humanization programming is provided. INVENTION CONTENTS

[0004] The utility model provides the internet of things controller of humanization programming can overcome the above -mentioned defects in the prior art.

[0005] The purpose and effect of the internet of things controller with humanization programming of the utility model are achieved by the following specific technical means:

[0006] The internet of things controller with humanization programming, including: control box, the inside of control box is equipped with inner box cavity, the inner box cavity is fixedly installed with the port heat dissipation device of heat dissipation function, the inside of port heat dissipation device still is installed with four groups of heat dissipation air cavity, four groups of heat dissipation air cavity are installed with S type dust suction assembly;

[0007] S type dust suction assembly is installed with upper dust suction device, S type dust suction assembly carries out the internal circulation wind heat dissipation of controller equipment whole, the dust of air inlet is carried out electrostatic precipitation by upper dust suction device, and the dust after dust removal is handled, and the dust after the handling of group can be realized high speed to the outside by internal circulation wind.

[0008] Further technical solutions, the dust suction assembly includes an upper dust suction device and a lower pipe device, the upper dust suction device and the lower pipe device are connected to form an S-shaped air pipe, the upper dust suction device includes an air pipe dust removal device and a dust grouping device, the air pipe dust removal device includes an exhaust pipe, an aluminum foil adsorption sheet is arranged on the inner wall of the exhaust pipe, a generator is fixedly installed at the air inlet of the exhaust pipe, a spiral roller brush is fixedly connected to the output end of the generator, and the brush part of the spiral roller brush is in contact with the aluminum foil adsorption sheet.

[0009] Further technical solutions, the dust agglomeration device includes an upper shell, the air inlet end of the upper shell is vertically arranged with an inner partition and an outer partition, the inner partition is arranged on the left side of the outer partition, the outer side of the outer partition is rotatably connected with the end of the spiral brush, the upper end of the outer partition and the inner wall of the upper shell are provided with an air inlet gap, the lower end of the inner partition and the inner wall of the upper shell are provided with an air outlet gap; the inner partition and the outer partition are fixedly provided with a spiral channel, and the spiral channel forms an S-shaped spiral agglomeration air duct between the air inlet gap and the air outlet gap.

[0010] Further technical solutions, the port heat dissipation device includes a port heat dissipation box, a transverse partition and a vertical partition are installed in the port heat dissipation device, the vertical partition and the transverse partition are perpendicular, and the transverse partition and the vertical partition divide the port heat dissipation box into four groups of heat dissipation air chambers; the four groups of heat dissipation air chambers include an air inlet filtering chamber, a primary heat dissipation chamber, a secondary heat dissipation chamber and an air outlet chamber, the air outlet pipe is arranged in the air inlet filtering chamber, the upper shell is arranged in the primary heat dissipation chamber, and the lower pipe passing device is arranged in the secondary heat dissipation chamber.

[0011] Further technical solutions, the air inlet filtering chamber and the outer side of the primary heat dissipation chamber are provided with a first dustproof box, the first dustproof box is internally provided with an upper air inlet chamber, the inner wall air inlet of the air inlet filtering chamber is fixedly installed with a suction assembly, the air inlet filtering chamber is communicated with the upper air inlet chamber, and the suction assembly comprises a mounting frame.

[0012] Further technical solutions, the air outlet of the air outlet chamber is provided with an air exhaust assembly, the secondary heat dissipation chamber and the outer side of the air outlet chamber are provided with a second dustproof box, the second dustproof box is internally provided with a lower air outlet chamber, the lower air outlet chamber is communicated with the inside of the air outlet chamber, and the suction assembly and the air exhaust assembly are consistent in structure.

[0013] Further technical solutions, the upper dust collection device and the lower pipe passing device are provided with exhaust holes, and the exhaust holes realize air inlet and air outlet of the primary heat dissipation chamber and the secondary heat dissipation chamber.

[0014] Further technical solutions, the outer side of the control box is rotatably connected with a cover, and the surface of the cover is provided with a programming panel.

[0015] Further technical solutions, the outer side of the port heat dissipation device is provided with a connecting port.

[0016] Compared with the prior art, the present application has the following beneficial effects:

[0017] The dust accumulation may cause abrasion, short circuit and other problems of internal elements of the device, affect normal operation and service life of the device, the dust pipe dust removal device effectively removes dust, reduces these risks, thereby prolongs the service life of the controller device, in the heat dissipation system of the control box, the accumulation of dust may affect the heat dissipation effect, if the air duct in the heat dissipation system is blocked by dust, the air circulation is not smooth, the heat dissipation efficiency is reduced, and then the temperature of the device is increased, the dust pipe dust removal device ensures that the air entering the heat dissipation system is clean, avoids the influence of dust on the heat dissipation system, guarantees the normal operation of the heat dissipation system, and further maintains the stability and reliability of the device.

[0018] The dust accumulation may cause abrasion, short circuit and other problems of internal elements of the device, affect normal operation and service life of the device, the dust pipe dust removal device effectively removes dust, reduces these risks, thereby prolongs the service life of the controller device, in the heat dissipation system of the control box, the accumulation of dust may affect the heat dissipation effect, if the air duct in the heat dissipation system is blocked by dust, the air circulation is not smooth, the heat dissipation efficiency is reduced, and then the temperature of the device is increased, the dust pipe dust removal device ensures that the air entering the heat dissipation system is clean, avoids the influence of dust on the heat dissipation system, guarantees the normal operation of the heat dissipation system, and further maintains the stability and reliability of the device.

[0019] The dust accumulation may cause abrasion, short circuit and other problems of internal elements of the device, affect normal operation and service life of the device, the dust pipe dust removal device effectively removes dust, reduces these risks, thereby prolongs the service life of the controller device, in the heat dissipation system of the control box, the accumulation of dust may affect the heat dissipation effect, if the air duct in the heat dissipation system is blocked by dust, the air circulation is not smooth, the heat dissipation efficiency is reduced, and then the temperature of the device is increased, the dust pipe dust removal device ensures that the air entering the heat dissipation system is clean, avoids the influence of dust on the heat dissipation system, guarantees the normal operation of the heat dissipation system, and further maintains the stability and reliability of the device. BRIEF DESCRIPTION OF DRAWINGS

[0020] Figure 1 It is the overall closed state schematic diagram of the utility model.

[0021] Figure 2 It is the overall expanded state schematic diagram of the utility model.

[0022] Figure 3 It is the appearance structure schematic diagram of the control box in the utility model.

[0023] Figure 4 It is the schematic diagram of the control box in the utility model.

[0024] Figure 5It is the front view structural schematic diagram of the control box in the utility model.

[0025] Figure 6 It is the appearance structure schematic diagram of the port heat dissipation box in the utility model.

[0026] Figure 7 It is the front view structural schematic diagram of the port heat dissipation box in the utility model.

[0027] Figure 8 It is the front view structural schematic diagram of the port heat dissipation box in the utility model.

[0028] Figure 9 It is the utility model Figure 8 It is the enlarged structure schematic diagram of the upper dust suction device in the utility model.

[0029] Mark explanation:

[0030] Control box 11, programming panel 12, cover body 13, connection port 14, inner box cavity 15, port heat dissipation device 16, port heat dissipation box 17, air suction assembly 18, horizontal partition 19, vertical partition 20, dust suction assembly 21, air inlet filter cavity 22, primary heat dissipation cavity 23, secondary heat dissipation cavity 24, air exhaust cavity 25, air exhaust assembly 26, upper air inlet cavity 27, lower air exhaust cavity 28, mounting frame 29, brushless motor 30, upper dust suction device 31, lower pipe passing device 32, upper housing 33, inner partition 34, spiral discharge path 35, air exhaust connecting pipe 36, spiral rolling brush 37, aluminum foil adsorption piece 38, generator 39, sewage air exhaust cavity 40, outer partition 41. Specific implementation

[0031] The implementation of the utility model will be further described in detail below in combination with the drawings and examples. The following examples are used to illustrate the utility model, but cannot be used to limit the scope of the utility model.

[0032] In the description of the utility model, unless otherwise specified, the meaning of "multiple" is two or more than two;The orientation or position relationship indicated by the terms "upper", "lower", "left", "right", "inner", "outer", "front end", "rear end", "head", "tail" and the like is based on the orientation or position relationship shown in the drawings, and is only for the convenience of describing the utility model and simplifying the description, and cannot be understood as indicating or implying that the indicated device or element must have a particular orientation, a particular orientation and operation, therefore, it cannot be understood as limiting the utility model. In addition, the terms "first", "second", "third" and the like are only for the purpose of description, and cannot be understood as indicating or implying relative importance.

[0033] In the description of the utility model, it is necessary to explain that, unless there are explicit provisions and limitations, the terms "connected", "connected" should be understood broadly, for example, it can be fixedly connected, and can be detachably connected, or integrally connected, it can be mechanically connected, or electrically connected, it can be directly connected, or indirectly connected through an intermediate medium.

[0034] In addition, fixed connection refers to the connection after fixing the parts or components without any relative movement; transmission connection refers to a connection mode of transmitting mechanical movement or torque to other working components through a transmission part; sliding connection refers to a connection mode that two objects are in contact but not fixed, and the two objects can slide relative to each other; and rotating connection refers to a connection mode that two objects are in contact but not fixed, and the two objects can rotate relative to each other. For ordinary skilled persons in the art, the specific meanings of the above terms in the utility model can be understood according to specific circumstances.

[0035] Embodiment:

[0036] As shown in the accompanying Figure 1 to the accompanying Figure 9 :

[0037] The utility model provides the internet of things controller of humanization programming.

[0038] Referring to the accompanying Figure 1 to the accompanying Figure 9 , comprising: control box 11, the inside of control box 11 is equipped with inner box cavity 15, the fixed mounting of inner box cavity 15 has the port heat dissipation device 16 of heat dissipation function, the inside of port heat dissipation device 16 still is installed four groups of heat dissipation air cavity, four groups of heat dissipation air cavity are installed S type dust collection assembly 21 in;

[0039] S type the dust collection assembly 21 inside installation has upper dust collection device 31, S type the dust collection assembly 21 carries out inner circulation air heat dissipation to controller equipment whole, the upper dust collection device 31 carries out electrostatic precipitation to the dust of air inlet, and the dust after dust removal is handled, and the dust after the handling of group can be realized high speed to the outside by inner circulation air and is discharged.

[0040] Preferably, referring to the accompanying Figure 6 to the accompanying Figure 9 , the dust collection assembly 21 includes upper dust collection device 31 and lower pipe device 32, the upper dust collection device 31 is connected with the lower pipe device 32 to form S type air pipe, the upper dust collection device 31 includes air pipe dust removal device and dust group device;The air pipe dust removal device includes exhaust pipe 36, the inner tube wall of exhaust pipe 36 is equipped with aluminum foil adsorption piece 38, the air inlet of exhaust pipe 36 is fixedly installed with generator 39, the output end of generator 39 is fixedly connected with spiral rolling brush 37, and the brush part of spiral rolling brush 37 is in contact with aluminum foil adsorption piece 38.

[0041] Preferably, referring to the accompanying drawings Figure 9 , the dust agglomeration device comprises an upper housing 33, the air inlet end of the upper housing 33 is vertically arranged with an inner partition 34 and an outer partition 41, the inner partition 34 is arranged on the left side of the outer partition 41, the outer side of the outer partition 41 is rotationally connected with the end of the spiral brush 37, the upper end of the outer partition 41 is provided with an air inlet gap between the inner wall of the upper housing 33, and the lower end of the inner partition 34 is provided with an air outlet gap between the inner wall of the upper housing 33; the inner partition 34 and the outer partition 41 are fixedly provided with a spiral channel 35, and the spiral channel 35 forms an S-shaped spiral agglomeration air channel between the air inlet gap and the air outlet gap.

[0042] Preferably, referring to the accompanying drawings Figure 7 , the port heat dissipation device 16 comprises a port heat dissipation box 17, a transverse partition 19 and a vertical partition 20 are arranged in the port heat dissipation device 16, the vertical partition 20 is perpendicular to the transverse partition 19, and the transverse partition 19 and the vertical partition 20 divide the port heat dissipation box 17 into four groups of heat dissipation air chambers; the four groups of heat dissipation air chambers comprise an air inlet filtering chamber 22, a first-stage heat dissipation chamber 23, a second-stage heat dissipation chamber 24 and an air outlet chamber 25, the air outlet connector 36 is arranged in the air inlet filtering chamber 22, the upper housing 33 is arranged in the first-stage heat dissipation chamber 23, and the lower pipe passing device 32 is arranged in the second-stage heat dissipation chamber 24.

[0043] Preferably, referring to the accompanying drawings Figure 7 , the air inlet filtering chamber 22 and the outer side of the first-stage heat dissipation chamber 23 are provided with a first dustproof box, the first dustproof box is internally provided with an upper air inlet chamber 27, the inner wall air inlet of the air inlet filtering chamber 22 is fixedly provided with a suction assembly 18, the air inlet filtering chamber 22 communicates with the upper air inlet chamber 27, and the suction assembly 18 comprises a mounting frame 29, and three brushless motors 30 are fixedly arranged on the mounting frame 29.

[0044] Preferably, referring to the accompanying drawings Figure 7 , the air outlet of the air outlet chamber 25 is provided with a air outlet assembly 26, the second-stage heat dissipation chamber 24 and the outer side of the air outlet chamber 25 are provided with a second dustproof box, the second dustproof box is internally provided with a lower air outlet chamber 28, the lower air outlet chamber 28 communicates with the inside of the air outlet chamber 25, and the suction assembly 18 and the air outlet assembly 26 are structurally identical.

[0045] Preferably, referring to the accompanying drawings Figure 7 , the upper dust suction device 31 and the lower pipe passing device 32 are provided with exhaust holes, and the exhaust holes realize air outlet and air inlet in the first-stage heat dissipation chamber 23 and the second-stage heat dissipation chamber 24.

[0046] Preferably, referring to the attached Figure 2 The control box 11 is rotatably connected with a cover 13 outside, and the surface of the cover 13 is provided with a programming panel 12.

[0047] Preferably, referring to the attached Figure 5 The port heat dissipation device 16 is provided with a connecting port 14 outside.

[0048] The specific use method of the utility model is as follows:

[0049] When using the device, first, connect it with the Internet of Things device. After the connection is completed, program through the programming panel 12 on the surface of the cover 13. After the programming setting is completed, the device enters the normal working state.

[0050] When the device works normally, a large amount of heat will be generated at the device at the connecting port 14. If the heat is too high, it will cause the internal temperature of the device to rise, which is easy to cause damage to the device. When the temperature control assembly at the connecting port 14 detects high temperature, the air suction assembly 18 and the air exhaust assembly 26 inside the device start to operate.

[0051] After the air suction assembly 18 starts to operate, it will suck air from the upper air inlet cavity 27 to the inside of the air inlet filter cavity 22, accelerating the air flow. Since the environment inside the air inlet filter cavity 22 is in a closed state, the air will enter from the air inlet of the air exhaust connector 36. When the air enters, the output end of the generator 39 drives the spiral rolling brush 37 to rotate, and in this process, the generator 39 generates current. The current is transmitted to the aluminum foil adsorption sheet 38 through the wire, so that it is electrified. The electrified aluminum foil adsorption sheet 38 electrostatically adsorbs dust sucked in. With the passage of time, dust accumulates on the surface of the aluminum foil adsorption sheet 38, and at this time, the rotation of the spiral rolling brush 37 will clean the dust. The cleaned dust is transported between the inner partition 34 and the outer partition 41 through the spiral interval, and then enters the spiral discharge channel 35 inside to be spirally accumulated and baled. After the dust is baled, it enters the lower pipe device 32 inside, and then enters the air exhaust cavity 25, and finally is discharged from the device through the air exhaust assembly 26.

[0052] After the air enters the air exhaust cavity 40, it will enter the first heat dissipation cavity 23 inside through the exhaust hole. After the air circulates in the first heat dissipation cavity 23, it will enter the upper dust collection device 31 inside again through the exhaust hole. Then, the air enters the second heat dissipation cavity 24 inside through the exhaust hole provided in the lower pipe device 32, and then enters the lower pipe device 32 inside again through the exhaust hole, and finally is discharged from the exhaust hole to the inside of the air exhaust cavity 25, and is discharged to the outside by the suction force of the air exhaust assembly 26.

[0053] The embodiments of the present application are given for the purpose of illustration and description, and are not intended to be exhaustive or to limit the present application to the forms disclosed. Many modifications and variations will be apparent to those of ordinary skill in the art. Embodiments were chosen and described in order to best explain the principles of the present application and its practical application, and to thereby enable others skilled in the art to best utilize the present application with various modifications as are suited to the particular use contemplated.

Claims

1. A user-programmable Internet of Things (IoT) controller, comprising a control box (11), wherein the control box (11) has an inner cavity (15), characterized in that: The inner cavity (15) is fixedly installed with a port heat dissipation device (16) for heat dissipation function. The port heat dissipation device (16) is also equipped with four sets of heat dissipation air chambers. The four sets of heat dissipation air chambers are equipped with S-shaped dust collection components (21). The S-type dust collection component (21) is equipped with an upper dust collection device (31). The S-type dust collection component (21) provides internal air circulation for heat dissipation of the entire controller device. The upper dust collection device (31) performs electrostatic dust removal on the incoming dust and clumps the dust after dust removal. The clumped dust can be discharged to the outside at high speed through the internal air circulation.

2. The user-programmable IoT controller according to claim 1, characterized in that: The dust collection assembly (21) includes an upper dust collection device (31) and a lower pipe device (32). The upper dust collection device (31) and the lower pipe device (32) are connected to form an S-shaped duct. The upper dust collection device (31) includes a duct dust removal device and a dust agglomeration device. The duct dust removal device includes an exhaust pipe (36). The inner wall of the exhaust pipe (36) is provided with an aluminum foil adsorption sheet (38). A generator (39) is fixedly installed at the air inlet of the exhaust pipe (36). A spiral roller brush (37) is fixedly connected to the output end of the generator (39). The brush part of the spiral roller brush (37) is in contact with the aluminum foil adsorption sheet (38).

3. The user-programmable Internet of Things controller according to claim 2, characterized in that: The dust agglomeration device includes an upper housing (33). The air inlet end of the upper housing (33) is vertically arranged with an inner partition (34) and an outer partition (41). The inner partition (34) is located on the left side of the outer partition (41). The outer side of the outer partition (41) is rotatably connected to the end of the spiral roller brush (37). An air inlet gap is provided between the upper end of the outer partition (41) and the inner wall of the upper housing (33). An air outlet gap is provided between the lower end of the inner partition (34) and the inner wall of the upper housing (33). A spiral exhaust channel (35) is fixedly arranged between the inner partition (34) and the outer partition (41). The spiral exhaust channel (35) forms an S-shaped spiral agglomeration air duct with the air inlet gap and the air outlet gap.

4. The user-programmable Internet of Things controller according to claim 3, characterized in that: The port heat dissipation device (16) includes a port heat dissipation box (17). A horizontal partition (19) and a vertical partition (20) are installed inside the port heat dissipation device (16). The vertical partition (20) is perpendicular to the horizontal partition (19). The horizontal partition (19) and the vertical partition (20) divide the interior of the port heat dissipation box (17) into four sets of heat dissipation air chambers. The four sets of heat dissipation air chambers include an air inlet filter chamber (22), a primary heat dissipation chamber (23), a secondary heat dissipation chamber (24), and an exhaust chamber (25). The exhaust pipe (36) is located in the air inlet filter chamber (22). The upper housing (33) is located in the primary heat dissipation chamber (23). The lower pipe device (32) is located in the secondary heat dissipation chamber (24).

5. The user-programmable Internet of Things controller according to claim 4, characterized in that: The air inlet filter chamber (22) and the first-level heat dissipation chamber (23) are provided with a first dust box. The first dust box is provided with an upper air inlet chamber (27). The air inlet of the inner wall of the air inlet filter chamber (22) is fixedly installed with a suction assembly (18). The air inlet filter chamber (22) is connected to the upper air inlet chamber (27). The suction assembly (18) includes a mounting bracket (29). Three brushless motors (30) are fixedly installed on the mounting bracket (29).

6. The user-programmable Internet of Things controller according to claim 5, characterized in that: The exhaust port of the exhaust cavity (25) is provided with an exhaust assembly (26). The secondary heat dissipation cavity (24) and the outer side of the exhaust cavity (25) are provided with a second dustproof box. The second dustproof box is provided with a lower exhaust cavity (28). The lower exhaust cavity (28) is connected to the interior of the exhaust cavity (25). The suction assembly (18) and the exhaust assembly (26) have the same structure.

7. The user-programmable Internet of Things controller according to claim 6, characterized in that: The upper dust collection device (31) and the lower pipe device (32) are provided with exhaust holes, which enable exhaust and intake of air into the primary heat dissipation cavity (23) and the secondary heat dissipation cavity (24).

8. The user-programmable Internet of Things controller according to claim 1, characterized in that: The control box (11) is rotatably connected to a cover (13), and the surface of the cover (13) is provided with a programming panel (12).

9. The user-programmable Internet of Things controller according to claim 7, characterized in that: A connection port (14) is installed on the outside of the port heat dissipation device (16).