Intelligent sinter plate dust removal system

The intelligent sintered plate dust removal system solves the problems of low efficiency and difficult operation and maintenance of existing dust collectors when handling dry and wet sticky dust, and achieves efficient and safe dust filtration and automated control.

CN223995683UActive Publication Date: 2026-03-17XIAMEN LIQI ENVIRONMENTAL ENG
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-25
Publication Date
2026-03-17

AI Technical Summary

Technical Problem

Existing dust collectors are ineffective in handling both dry and wet sticky dust, and lack intelligent monitoring and automatic control functions, which increases the workload of maintenance personnel.

Method used

An intelligent dust removal system for sintered plastic plates was designed, comprising a sintered plastic plate dust collector, a dust collection module, a monitoring module, and a control module. It employs a filtration assembly and a pulse jet assembly, combined with temperature, differential pressure, and dust sensors for real-time monitoring, and achieves automated control through a PLC controller.

Benefits of technology

It achieves efficient filtration of both dry and wet sticky dust, reduces on-site handling pressure, improves dust removal efficiency and safety, and enhances the intelligent monitoring and automatic adjustment capabilities of the dust collector.

✦ Generated by Eureka AI based on patent content.

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    Figure CN223995683U_ABST
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Abstract

The utility model discloses an intelligent dust removal system for a sinter plate. The intelligent dust removal system comprises a sinter plate dust remover, a dust collection module, a monitoring module and a control module, the sinter plate dust remover comprises a shell, a blowing assembly, a filtering assembly, a bracket and a dust removal fan, the shell is fixed on the ground through a support, and the filtering assembly is installed in the middle of the interior of the shell; one end of the blowing assembly is mounted at the upper part in the shell, and the other end of the blowing assembly is mounted outside the shell; the dust removal fan is mounted outside the shell, and an air outlet of the dust removal fan is communicated with the upper part in the shell; the dust collection module is mounted at the bottom of the shell; the monitoring module comprises a temperature transmitter, a differential pressure transmitter and a first damped rotation level gage, and the temperature transmitter, the differential pressure transmitter and the first damped rotation level gage are mounted at corresponding positions in the shell; and the control module is connected with the temperature transmitter, the differential pressure transmitter, the first damped rotation level gage, the dust collection module, the blowing assembly and the dust removal fan. The dust removal automation of the sinter plate dust removal system is realized.
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Description

TECHNICAL FIELD

[0001] The utility model relates to dust removal system technical field especially relates to an intelligent plastic burning plate dust removal system. BACKGROUND

[0002] With the increase of the attention of society to industrial production emission, the requirement of industrial production emission is increasingly strict. Dust is produced in the production work due to the influence of raw materials or processing technology, which is unavoidable, but the dust needs to be effectively prevented and treated. Therefore, dust prevention and treatment has become one of the important work of these enterprises, such as coal conveying industry of power plant, new plant requires to be equipped with dust remover, and old plant needs to be modified for dust prevention and treatment.

[0003] Under the trend of increasing demand for dust prevention and treatment, more and more types of dust removal products appear, including wet dust collector, dry dust collector and electric dust collector. Wet dust collector increases the sewage treatment capacity, but the reuse of filtered material is difficult. In the dry dust collector, the traditional cloth bag is used most, but its use effect is not good for dust particles with high wet viscosity, which can easily cause bag sticking, reduce the service life of cloth bag and increase the workload of on-site maintenance personnel. Electric dust collector often worries about safety hazards in actual use. And the dust remover products on the market are relatively weak in intelligent function, especially the remote monitoring of dust remover is not comprehensive enough, and the maintenance personnel often need to check the running state of each part of the dust remover on site. In addition, the control system of the dust remover cannot automatically adjust the control according to the detected working state of the dust remover, and the maintenance personnel need to judge whether to check on site according to the system. SUMMARY

[0004] Therefore, the purpose of the utility model is to provide an intelligent plastic burning plate dust removal system, which uses safe and efficient dust remover form, can be suitable for dry dust particles and high wet viscosity dust particles, solves the reuse problem of filtered dust particles, and does not increase the on-site treatment pressure.

[0005] In order to realize the above technical purpose, the utility model adopts the following technical scheme:

[0006] An intelligent plastic burning plate dust removal system, comprising: a plastic burning plate dust remover, a dust collection module, a monitoring module and a control module.

[0007] The plastic burning plate dust remover comprises a shell, a blowing assembly, a filtering assembly, a support and a dust removal fan; the shell is fixed on the ground through the support, and the filtering assembly is installed in the middle part of the shell; one end of the blowing assembly is installed in the upper part of the shell, and the other end of the blowing assembly is installed outside the shell; the dust removal fan is installed outside the shell, and the air outlet of the dust removal fan is communicated with the upper part in the shell;

[0008] The dust collection module is installed at the bottom of the housing;

[0009] The monitoring module includes a temperature transmitter, a differential pressure transmitter, and a first rotary paddle level gauge. The temperature transmitter, differential pressure transmitter, and first rotary paddle level gauge are respectively installed in corresponding positions inside the housing to monitor the working status of the sintered plate dust removal system in real time.

[0010] The control module is connected to the temperature transmitter, differential pressure transmitter, first rotary paddle level gauge, dust collection module, jet blowing assembly and dust removal fan respectively.

[0011] Furthermore, the interior of the shell is divided into a clean air chamber, a dust chamber, and a dust hopper. The clean air chamber is located in the upper part of the shell and is used to collect filtered clean gas; the dust chamber is located in the middle part of the shell and is used to contain dust-containing gas; the dust hopper is located in the lower part of the shell and is used to collect filtered dust.

[0012] Furthermore, a first air pipe is provided at the front end of the ash hopper, and a guide plate is installed on the inner wall of the ash hopper at a position corresponding to the air outlet of the first air pipe; the guide plate is ∧-shaped, and the air inlet of the guide plate is connected to the air outlet of the first air pipe.

[0013] Furthermore, the jetting assembly includes multiple jetting pipes, a pulse solenoid valve, an air manifold, a pressure regulating filter, a pressure gauge, and a drain valve. The multiple jetting pipes are installed horizontally and parallel within the clean air chamber. Each jetting pipe has multiple air outlets at its bottom, the number of which matches the number of through holes on the upper part of the filter assembly. Compressed air is injected into the filter assembly through these outlets. The pulse solenoid valve, air manifold, pressure regulating filter, pressure gauge, and drain valve are all installed outside the housing. One end of each jetting pipe is fixedly connected to the inner wall of the clean air chamber, and the other end is connected to the pulse solenoid valve. The air manifold is installed at the bottom of the pulse solenoid valve. The pressure regulating filter is installed below the air manifold and connected to it. The pressure gauge is installed at one end of the air manifold, and the drain valve is installed at the bottom of the air manifold. The pulse solenoid valve, pressure gauge, and drain valve are connected to the control module.

[0014] Furthermore, the dust collection module includes an ash discharge valve and a dust collection box. The ash discharge valve is installed at the bottom of the ash hopper to control the discharge of dust from the ash hopper. The dust collection box is installed below the ash discharge valve to collect the dust discharged from the ash hopper. The ash discharge valve is connected to the control module.

[0015] Furthermore, the dust collection box has an opening at its front end, and a pull-out drawer is installed at the opening; a second rotary level gauge is also installed inside the dust collection box, and the second rotary level gauge is connected to the control module.

[0016] Furthermore, the temperature transmitter is installed in the dust chamber to monitor the temperature inside the sintered plate dust collector in real time; the differential pressure transmitter is installed between the clean air chamber and the dust chamber to monitor the pressure difference between the clean air chamber and the dust chamber; and the first paddlewheel level gauge is installed inside the ash hopper to monitor the accumulation height of dust in the ash hopper.

[0017] Furthermore, the top of the housing is equipped with a flip-top inspection door, the fixed end of which is hinged to the housing, and the movable end of which can be flipped open or closed along the fixed end; the movable end of the inspection door is provided with a handle; the movable end of the inspection door is also provided with a fixing hole, and the inspection door is locked to the top of the housing by passing a bolt through the fixing hole.

[0018] Furthermore, a first observation port is installed at the front end of the housing and above the blowing assembly for observing the condition inside the clean air chamber; a second observation port is installed at the front end of the housing and below the blowing assembly for observing the condition inside the dust chamber; both the first and second observation ports are made of transparent PC endurance board material.

[0019] An explosion vent is installed at the front end of the housing and below the blowing assembly. The explosion vent is made of stainless steel. The housing is made of carbon steel.

[0020] Furthermore, the monitoring module also includes a dust particle sensor, which is installed on the belt conveyor to detect the concentration of dust particles on the belt conveyor in real time; a second air pipe is installed on the belt conveyor, and an air valve is installed on the air inlet of the second air pipe to control the flow of air; the air outlet of the second air pipe is connected to the air inlet of the first air pipe; the dust particle sensor and the air valve are connected to the control module.

[0021] By adopting the above technical solution, the beneficial effects of this utility model compared with the prior art are as follows:

[0022] It uses a safe and efficient dust collector that is suitable for both dry and highly sticky dust particles. After purifying the dust, it is discharged into the dust collection box, solving the problem of reusing filtered dust particles. It also includes a monitoring module and a control module. The control module can automatically adjust the control based on the detected working status of the sintered plastic plate dust collection system without increasing the on-site processing pressure. Attached Figure Description

[0023] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0024] Figure 1 This is a perspective view of an intelligent sintered plastic plate dust removal system provided in an embodiment of this utility model.

[0025] Figure 2 yes Figure 1 The front view.

[0026] Figure 3 yes Figure 2 Sectional view in the BB direction.

[0027] Figure 4 This is a schematic diagram of the connection structure between the first air tube and the guide plate in this utility model.

[0028] Figure 5 This is a schematic diagram of the overall structure of the sintered plastic plate dust removal system and belt conveyor provided in the embodiments of this utility model.

[0029] Figure 6 This is a connection diagram of the control module provided in an embodiment of this utility model.

[0030] Explanation of the labels in the diagram:

[0031] 100-Sintered plastic plate dust removal system, 1-Sintered plastic plate dust collector, 11-Shell, 111-Clean air chamber, 112-Dust chamber, 113-Ash hopper, 114-First air pipe, 115-Guide plate, 116-Inspection door, 1161-Handle, 1162-Fixing hole, 1163-Bolt, 117-First observation port, 118-Second observation port, 119-Explosion vent, 12-Pulse jet assembly, 121-Pulse jet pipe, 122-Pulse solenoid valve, 123-Air tank, 124-Pressure regulating filter, 125-Pressure gauge, 126-Drain valve, 127-Air outlet, 13-Filter assembly, 14-Bracket, 15-Dust removal fan;

[0032] 2-Dust collection module, 21-Ash discharge valve, 22-Dust collection box, 23-Opening, 24-Drawer;

[0033] 3-Monitoring module, 31-Temperature transmitter, 32-Differential pressure transmitter, 33-First rotary paddle level gauge, 34-Second rotary paddle level gauge, 35-Dust particle sensor;

[0034] 4-Control module;

[0035] 200-Belt conveyor, 201-Second air pipe, 202-Air valve. Detailed Implementation

[0036] The present invention will be further described in detail below with reference to the accompanying drawings and embodiments. It should be particularly noted that the following embodiments are only for illustrating the present invention and do not limit the scope of the present invention. Similarly, the following embodiments are only some embodiments of the present invention, not all embodiments. All other embodiments obtained by those skilled in the art without creative effort are within the protection scope of the present invention.

[0037] Please see Figures 1-6 This utility model discloses an intelligent sintered plastic plate dust removal system 100, comprising: a sintered plastic plate dust collector 1, a dust collection module 2, a monitoring module 3, and a control module 4; the sintered plastic plate dust collector 1 is used to filter dust-laden gas; the dust collection module 2 is used to collect and discharge the filtered dust; the monitoring module 3 is used to monitor the working status of the sintered plastic plate dust removal system 100 in real time; and the control module 4 is used to control the working status of the sintered plastic plate dust removal system 100.

[0038] The sintered plastic plate dust collector 1 includes a housing 11, a pulse jet assembly 12, a filter assembly 13, a support 14, and a dust collector fan 15. The housing 11 is fixed to the ground by the support 14. The filter assembly 13 is installed in the middle of the housing 11 (in the dust chamber 112). One end of the pulse jet assembly 12 is installed in the upper part of the housing 11, and the other end of the pulse jet assembly 12 is installed outside the housing 11. The dust collector fan 15 is installed outside the housing 11, and the outlet of the dust collector fan 15 is connected to the upper part of the housing 11. The housing 11 is the main structure of the entire sintered plate dust collector 1; the jet cleaning assembly 12 is used to remove dust from the surface of the filter assembly 13; the filter assembly 13 is used to filter dust-laden gas, and the filter assembly 13 is composed of multiple sintered plates, suitable for filtering dry dust particles and wet sticky dust particles; the bracket 14 is used to support the housing 11 to ensure the stability of the sintered plate dust collector 1; the dust removal fan 15 is used to provide airflow power to discharge the filtered clean gas.

[0039] The dust collection module 2 is installed at the bottom of the housing 11;

[0040] The monitoring module 3 includes a temperature transmitter 31, a differential pressure transmitter 32, and a first rotary paddle level gauge 33. The temperature transmitter 31, the differential pressure transmitter 32, and the first rotary paddle level gauge 33 are respectively installed in corresponding positions inside the housing 11 to monitor the working status of the plastic sintered plate dust removal system 100 in real time.

[0041] The control module 4 is connected to the temperature transmitter 31, the differential pressure transmitter 32, the first rotary paddle level gauge 33, the dust collection module 2, the jet blowing assembly 12, and the dust removal fan 15, respectively.

[0042] In this embodiment, the interior of the housing 11 is divided into a clean air chamber 111, a dust chamber 112, and a dust hopper 113. The clean air chamber 111 is located in the upper part of the housing 11 and is used to collect filtered clean gas. The dust chamber 112 is located in the middle part of the housing 11 and is used to contain dust-containing gas. The dust hopper 113 is located in the lower part of the housing 11 and is used to collect filtered dust.

[0043] In this embodiment, a first air pipe 114 is provided at the front end of the ash hopper 113, and a guide plate 115 is installed on the inner wall of the ash hopper 113 at a position corresponding to the air outlet of the first air pipe 114. The guide plate 115 is ∧-shaped, and the air inlet of the guide plate 115 is connected to the air outlet of the first air pipe 114. The ∧-shaped structure of the guide plate 115 can prevent the airflow from concentrating when it rises, thus dispersing the airflow.

[0044] In this embodiment, the jetting assembly 12 includes multiple jetting pipes 121, a pulse solenoid valve 122, an air manifold 123, a pressure regulating filter 124, a pressure gauge 125, and a drain valve 126. The multiple jetting pipes 121 are installed horizontally and parallel within the clean air chamber 111. Each jetting pipe 121 has multiple air outlets 127 at its bottom, the number of which matches the number of through holes on the upper part of the filter assembly 13. Compressed air is jetted into the filter assembly 13 through the air outlets 127 to remove dust from the surface of the filter assembly 13. The pulse solenoid valve 122, air manifold 123, pressure regulating filter 124, and pressure gauge 125 are also included. Both valve 25 and drain valve 126 are installed on the outside of housing 11. One end of the blow pipe 121 is fixedly connected to the inner wall of clean air chamber 111, and the other end of the blow pipe 121 is connected to pulse solenoid valve 122. Air manifold 123 is installed at the bottom of pulse solenoid valve 122. Pressure regulating filter 124 is installed below air manifold 123 and connected to air manifold 123. Pressure gauge 125 is installed at one end of air manifold 123, and drain valve 126 is installed at the bottom of air manifold 123. Pulse solenoid valve 122, pressure gauge 125 and drain valve 126 are connected to control module 4. The blowpipe 121 is used to spray compressed air onto the surface of the filter assembly 13; the pulse solenoid valve 122 is used to control the blowing frequency of the blowpipe 121; the air tank 123 is used to store compressed air; the pressure regulating filter 124 is used to regulate and filter compressed air; the pressure gauge 125 is used to monitor the pressure inside the air tank 123; and the drain valve 126 is used to drain the condensate inside the air tank 123.

[0045] In this embodiment, the dust collection module 2 includes an ash discharge valve 21 and a dust collection box 22. The ash discharge valve 21 is installed at the bottom of the ash hopper 113 and is used to control the discharge of dust in the ash hopper 113. The dust collection box 22 is installed below the ash discharge valve 21 and is used to collect the dust discharged from the ash hopper 113. The ash discharge valve 21 is connected to the control module 4.

[0046] In this embodiment, the dust collection box 22 has an opening 23 at its front end, and a pull-out drawer 24 is installed at the opening 23. The dust collection box 22 adopts a pull-out drawer 24 structure, which facilitates cleaning and maintenance. A second gyratory level gauge 34 is also installed inside the dust collection box 22 for real-time monitoring of the dust accumulation height inside the dust collection box 22. The second gyratory level gauge 34 is connected to the control module 4.

[0047] In this embodiment, the temperature transmitter 31 is installed inside the dust chamber 112 to monitor the temperature inside the sintered plate dust collector 1 in real time; the differential pressure transmitter 32 is installed between the clean air chamber 111 and the dust chamber 112 to monitor the pressure difference between the clean air chamber 111 and the dust chamber 112 and to determine the clogging status of the filter assembly 13; the first vortex level gauge 33 is installed inside the ash hopper 113 to monitor the dust accumulation height inside the ash hopper 113.

[0048] In this embodiment, the top of the housing 11 is equipped with a flip-top inspection door 116. The fixed end of the inspection door 116 is hinged to the housing 11, and the movable end of the inspection door 116 can be flipped open or closed along the fixed end. The movable end of the inspection door 116 is provided with a handle 1161. The movable end of the inspection door 116 is also provided with a fixing hole 1162, and the inspection door 116 is locked to the top of the housing 11 by bolts 1163 passing through the fixing hole 1162.

[0049] In this embodiment, a first observation port 117 is installed at the front end of the housing 11 and above the blowing assembly 12 for observing the situation inside the clean air chamber 111; a second observation port 118 is installed at the front end of the housing 11 and below the blowing assembly 12 for observing the situation inside the dust chamber 112; both the first observation port 117 and the second observation port 118 are made of transparent PC endurance board material for easy observation.

[0050] In this embodiment, a vent 119 is installed at the front end of the housing 11, below the blowing assembly 12. The vent 119 is made of stainless steel, while the housing 11 is made of carbon steel. The vent 119 is prone to bursting. In the event of a hazard, the structure of the vent 119 will be damaged first, without affecting other structures. Repairing the vent 119 only requires repairing it. Without the vent 119, the entire housing 11 would be made of the same material, resulting in the same degree of bursting and an unpredictable location of the burst, potentially causing the entire structure to burst and making repair even more difficult. The vent 119 is installed in the dust chamber 112 because the dust concentration in the dust chamber 112 is higher than that in the clean air chamber 111 and the ash hopper 113. Risks typically arise from excessively high temperatures and high dust concentrations, thus requiring the vent 119 to be located in the dust chamber 112.

[0051] In this embodiment, the monitoring module 3 further includes a dust particle sensor 35, which is installed on the belt conveyor 200 and is used to detect the concentration of dust particles on the belt conveyor 200 in real time.

[0052] A second air pipe 201 is installed on the belt conveyor 200. A damper 202 is installed on the air inlet of the second air pipe 201 to control the airflow. The air outlet of the second air pipe 201 is connected to the air inlet of the first air pipe 114. The dust particle sensor 35 and the damper 202 are connected to the control module 4. The sintered plastic plate dust removal system 100 is linked with the belt conveyor 200. When the belt conveyor 200 starts, the sintered plastic plate dust removal system 100 starts automatically; after the belt conveyor 200 stops, the sintered plastic plate dust removal system 100 shuts down after a delay.

[0053] The control module 4 is a PLC controller. In this embodiment, the control module 4 is connected to the temperature transmitter 31, the differential pressure transmitter 32, the first rotary paddle level gauge 33, the second rotary paddle level gauge 34, the ash discharge valve 21, the pulse solenoid valve 122, the pressure gauge 125, the drain valve 126, the dust collector fan 15, the dust particle sensor 35, and the air valve 202. Its automated control process is as follows:

[0054] The temperature transmitter 31 monitors the temperature inside the sintered plate dust collector 1 in real time; the differential pressure transmitter 32 monitors the pressure difference between the clean air chamber 111 and the dust chamber 112 in real time; the first rotary paddle level gauge 33 monitors the dust accumulation height in the ash hopper 113 in real time; the second rotary paddle level gauge 34 monitors the dust accumulation height in the dust collection box 22 in real time; the pressure gauge 125 monitors the pressure inside the air tank 123 in real time; and the dust particle sensor 35 detects the concentration of dust particles on the belt conveyor 200 in real time. The monitored data is then transmitted to the control module 4. After receiving the monitoring data, the control module 4 controls the corresponding equipment to perform the corresponding operations.

[0055] When the belt conveyor 200 is started, the control air valve 202 and the dust removal fan 15 are opened.

[0056] The operating power of the dust removal fan 15 is adjusted according to the dust concentration detected by the dust particle sensor 35.

[0057] The pulse solenoid valve 122 is automatically controlled to adjust the blowing frequency of the blowing assembly 12 based on the pressure difference between the clean air chamber 111 and the dust air chamber 112 monitored by the differential pressure transmitter 32, so as to ensure the cleanliness and dust removal efficiency of the filter assembly 13.

[0058] According to the dust accumulation height in the ash hopper 113 monitored by the first rotary level gauge 33, when the dust accumulation height in the ash hopper 113 reaches the set value, the ash discharge valve 21 is controlled to open, and the dust in the ash hopper 113 is discharged to the dust collection box 22.

[0059] Based on the dust accumulation height inside the dust collection box 22 monitored by the second rotary paddle level gauge 34, when the dust accumulation height inside the dust collection box 22 reaches the set value, the operation and maintenance personnel are reminded to clean the dust collection box 22.

[0060] Based on the temperature inside the sintered plate dust collector 1 monitored by the temperature transmitter 31, an alarm is issued when the temperature is abnormal (the control module 4 is also connected to the alarm module) to notify the maintenance personnel to investigate and handle the problem.

[0061] According to the pressure value monitored by the pressure gauge 125 in the air tank 123, when the pressure value is not within the preset range (exceeding the upper limit of the preset range or falling below the lower limit of the preset range), the control module 4 alarms to remind the maintenance personnel to check the air source; the drain valve 126 is an automatic drain valve, which automatically opens to drain the water in the air tank 123 when water accumulation is detected in the air tank 123.

[0062] The working principle of this utility model is as follows:

[0063] The sintered plastic plate dust collection system 100 is linked to the belt conveyor 200, meaning the sintered plastic plate dust collection system 100 will start immediately when the belt conveyor 200 starts and will shut down after a delay when the belt conveyor 200 stops. After the belt conveyor 200 starts, the air valve 202 opens, and then the dust collection fan 15 starts. When the dust enters the sintered plastic plate dust collector 1, it is dispersed by the guide plate 115. When the dust passes through the filter assembly 13, the dust is blocked on the outside, i.e., in the dust chamber 112. The filtered clean air enters the clean air chamber. After a certain period of operation, dust particles accumulate on the surface of the filter assembly 13. The blowing assembly 12 blows the dust particles into the ash hopper 113. When the dust particles accumulate too high, the first rotary level gauge 33 installed in the ash hopper 113 transmits a signal to the control module 4, which then controls the ash discharge valve 21 to open and discharge the dust into the dust collection box 22. When the dust in the dust collection box 22 accumulates to a certain amount, the second rotary level gauge 34 transmits a signal to the control module 4, which then issues an alarm signal to notify the maintenance personnel to clean the ash.

[0064] The working power of the dust collector fan 15 in the sintered plastic plate dust collector 1 is automatically adjusted in real time. The control module 4 adjusts the working power of the dust collector fan 15 based on the dust particle concentration detected and fed back by the dust particle sensor 35. When the jet cleaning assembly 12 is performing dust removal, the control module 4 adjusts the working frequency of the pulse solenoid valve 122. The working frequency of the pulse solenoid valve 122 is adjusted by the differential pressure transmitter 32. The differential pressure transmitter 32 feeds back the pressure difference between the clean air chamber 111 and the dust chamber 112 to the control module 4 for analysis. If the difference is too high and adjusting the working frequency of the pulse solenoid valve 122 has no effect, the filter assembly 13 needs to be cleaned / replaced. If the difference is too low, the filter assembly 13 is damaged and maintenance personnel need to come to the site to check for abnormalities. The control module 4 issues an alarm (the control module 4 is also connected to an alarm module) when the temperature inside the sintered plastic plate dust collector 1 is abnormal, based on the temperature monitored by the temperature transmitter 31, to notify maintenance personnel to check and handle the problem. The control module 4 monitors the pressure value inside the air tank 123 according to the pressure gauge 125; when the pressure value is not within the preset range (exceeding the upper limit of the preset range or falling below the lower limit of the preset range), the control module 4 alarms to remind the maintenance personnel to check the air source; the drain valve 126 is an automatic drain valve, which automatically opens to drain the water inside the air tank 123 when water accumulation is detected inside the air tank 123.

[0065] The above description is only a part of the embodiments of this utility model, and does not limit the scope of protection of this utility model. Any equivalent device or equivalent process transformation made based on the content of this utility model specification and drawings, or direct or indirect application in other related technical fields, are similarly included in the patent protection scope of this utility model.

Claims

1. An intelligent sintered plate dust removal system, characterized in that, The application relates to a plastic-burning plate dust removal system. The plastic-burning plate dust removal system comprises a shell, a blowing assembly, a filtering assembly, a support and a dust removal fan; the shell is fixed on the ground through the support, the filtering assembly is arranged in the middle part of the shell, one end of the blowing assembly is arranged in the upper part of the shell, the other end of the blowing assembly is arranged outside the shell, and the dust removal fan is arranged outside the shell and communicates with the upper part of the shell. The dust collection module is arranged at the bottom of the shell. The monitoring module comprises a temperature transmitter, a differential pressure transmitter and a first anti-rotation material level meter, which are arranged at corresponding positions in the shell and used for monitoring the working state of the plastic-burning plate dust removal system in real time. The control module is connected with the temperature transmitter, the differential pressure transmitter, the first anti-rotation material level meter, the dust collection module, the blowing assembly and the dust removal fan. The inside of the shell is divided into a clean gas chamber, a dust gas chamber and a dust hopper; the clean gas chamber is arranged in the upper part of the shell and used for collecting clean gas filtered; the dust gas chamber is arranged in the middle part of the shell and used for containing dust gas; and the dust hopper is arranged in the lower part of the shell and used for collecting dust filtered.

2. The intelligent sintered plate dust removal system according to claim 1, characterized in that, The front end of the dust hopper is provided with a first air pipe, and a flow guide plate is arranged on the inside wall of the dust hopper and corresponds to the air outlet of the first air pipe.

3. The intelligent sintered plate dust removal system according to claim 2, characterized in that, The blowing assembly comprises a plurality of blowing pipes, a pulse electromagnetic valve, an air bag, a pressure regulating filter, a pressure gauge and a drain valve; the blowing pipes are arranged in parallel in the clean gas chamber, the bottom of each blowing pipe is provided with a plurality of air outlets, the number of the air outlets is consistent with the number of through holes in the upper part of the filtering assembly, compressed air is injected into the filtering assembly through the air outlets, the pulse electromagnetic valve, the air bag, the pressure regulating filter, the pressure gauge and the drain valve are arranged outside the shell, one end of the blowing pipe is fixedly connected to the inner side wall of the clean gas chamber, the other end of the blowing pipe is connected with the pulse electromagnetic valve, the air bag is arranged at the bottom of the pulse electromagnetic valve, the pressure regulating filter is arranged below the air bag and connected with the air bag, the pressure gauge is arranged at one end of the air bag, and the drain valve is arranged at the bottom of the air bag; the pulse electromagnetic valve, the pressure gauge and the drain valve are connected with the control module.

4. The intelligent sintered plate dust removal system according to claim 2, characterized in that, The dust collection module comprises a dust discharging valve and a dust collection box; the dust discharging valve is arranged at the bottom of the dust hopper and used for controlling the discharge of dust in the dust hopper; the dust collection box is arranged below the dust discharging valve and used for collecting the dust discharged from the dust hopper; and the dust discharging valve is connected with the control module.

5. The intelligent sintered plate dust removal system according to claim 2, characterized in that, The front end of the dust collection box is provided with an opening, a drawer is arranged at the opening and can be pushed and pulled, a second anti-rotation material level meter is further arranged in the dust collection box, and the second anti-rotation material level meter is connected with the control module.

6. The intelligent sintered plate dust removal system according to claim 5, characterized in that, ​ 7. The intelligent sintered plate dust removal system according to claim 2, wherein, The temperature transmitter is installed in the dust chamber and is used for monitoring the temperature inside the plastic burning plate dust remover in real time; the differential pressure transmitter is installed between the clean chamber and the dust chamber and is used for monitoring the pressure difference between the clean chamber and the dust chamber; and the first anti-rotation material level meter is installed inside the ash bucket and is used for monitoring the accumulation height of dust in the ash bucket.

8. The intelligent sintered plate dust removal system according to claim 1, characterized in that, A flip cover inspection door is arranged on the top of the shell, the fixed end of the inspection door is hinged to the shell, and the movable end of the inspection door is flipped open or closed along the fixed end; a handle is arranged on the movable end of the inspection door; and a fixing hole is further arranged on the movable end of the inspection door, and the inspection door is locked to the top of the shell through a bolt passing through the fixing hole.

9. The intelligent sintered plate dust removal system according to claim 2, wherein, A first observation port is arranged on the front end of the shell above the blowing assembly and is used for observing the situation in the clean chamber; a second observation port is arranged on the front end of the shell below the blowing assembly and is used for observing the situation in the dust chamber; and the first observation port and the second observation port are both made of transparent PC resistant plate material; A blast vent is further arranged on the front end of the shell below the blowing assembly, and the blast vent is made of stainless steel; and the shell is made of carbon steel.

10. The intelligent sintered plate dust removal system according to claim 1, characterized in that, The monitoring module further comprises a dust particle sensor, the dust particle sensor is installed on the belt conveying device and is used for detecting the concentration of dust particles on the belt conveying device in real time; a second air pipe is installed on the belt conveying device, a wind valve is installed on the air inlet of the second air pipe and is used for controlling the on-off of air flow, the air outlet of the second air pipe is connected with the air inlet of the first air pipe; and the dust particle sensor and the wind valve are connected to the control module.