Deflagration prevention detection device for coal mill
By designing a detachable fixing plate and sliding rod structure, as well as an anti-clogging probe, the problem of inaccurate values after long-term use of coal mill testing equipment was solved, ensuring the safe and stable operation of the coal mill and reducing the risk of deflagration.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- GUANGDONG DATANG INT LEIZHOU POWER GENERATION CO
- Filing Date
- 2025-07-15
- Publication Date
- 2026-05-15
AI Technical Summary
Existing coal mill temperature and pressure detectors are prone to inaccurate readings after prolonged use, leading to delayed alarms and increasing the risk of deflagration.
A coal mill anti-deflagration detection device was designed. The device features a detachable fixing plate and slide bar structure, which facilitates the periodic replacement of temperature and pressure detection equipment. It is also equipped with an anti-clogging probe to clean the pressure tapping port and ensure the accuracy of the detection equipment.
This effectively avoids the problem of inaccurate values after prolonged use of testing equipment, reduces the risk of deflagration, and improves the operational safety and reliability of the coal mill.
Smart Images

Figure CN224237053U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the technical field of coal mill deflagration detection, and more specifically, it relates to a coal mill deflagration prevention detection device. Background Technology
[0002] The coal mill is a key piece of equipment in a pulverized coal preparation system. Its function is to grind coal lumps into pulverized coal with a certain particle size and fineness to meet combustion requirements. The operating efficiency of the coal mill and the quality of the pulverized coal directly affect the boiler's combustion efficiency, thermal efficiency, and the overall economic efficiency and reliability of the unit. In modern industrial production, a high-efficiency and stable coal mill is of great significance for ensuring energy supply, improving production efficiency, reducing energy consumption, and minimizing environmental pollution. When grinding coal lumps, the internal conditions of the coal mill must be constantly monitored to prevent internal deflagration during operation.
[0003] Existing coal mills mainly rely on temperature and pressure detectors to monitor the internal conditions. However, these detectors operate in the enclosed environment of the mill for extended periods, leading to inaccurate readings over time. This prevents external operators from knowing the true internal conditions of the mill during operation, causing the detectors to fail to alarm properly when problems occur. Consequently, this increases the risk of deflagration detection devices. Utility Model Content
[0004] The purpose of this utility model is to overcome the shortcomings of the existing technology and provide a coal mill anti-deflagration detection device.
[0005] The above objectives are achieved through the following technical solutions:
[0006] A coal mill anti-deflagration detection device comprises a coal mill body, the outer wall of which is fixedly connected to four sliding rods, the outer walls of which are slidably connected to a fixed plate through through holes, the surface of which is fixedly connected to a temperature detection device and a pressure detection device through fixing bolts, the outer wall of which is fixedly connected to a protrusion, and the surface of which is provided with a wire insertion port, the protrusion being movably connected to a locking bolt through a through hole, and the locking bolt being threaded into a circular groove on the surface of the coal mill body.
[0007] The aforementioned coal mill anti-explosion detection device comprises a coal mill body, one end of which is fixedly connected to a motor via a bracket, the other end of which is fixedly connected to a connecting pipe, and a discharge port at the lower end of the coal mill body.
[0008] In the aforementioned coal mill anti-deflagration detection device, the ends of the four sliding rods are threadedly connected to corresponding limiting blocks, and the diameter of the limiting blocks is larger than the diameter of the sliding rods.
[0009] The aforementioned coal mill anti-explosion detection device has a pressure tap on the outer wall of the air pressure detection equipment, and the end of the pressure tap is fitted with an anti-clogging probe.
[0010] The aforementioned coal mill anti-explosion detection device has an outer wall of the anti-clogging probe that is fixedly connected to two locking blocks, which are inserted into the slots on the surface of the pressure tapping port.
[0011] The aforementioned coal mill anti-explosion detection device has a connecting pipe whose upper end is fixedly connected to a storage tank, and the storage tank has a feed inlet machined on its side wall. Beneficial effects
[0012] 1. This utility model includes a coal mill body, slide bar, fixing plate, temperature detection device, air pressure detection device, protrusion, and locking bolts. After the temperature and air pressure detection devices inside the coal mill have been working for a long time, the operator can loosen the locking bolts, pull the fixing plate outward along the slide bar, and then unscrew the fixing bolts of the temperature and air pressure detection devices. The temperature and air pressure detection devices can then be removed for maintenance. To reduce the downtime of the coal mill, new temperature and air pressure detection devices can be installed on the fixing plate, and the wires can be connected to the outside of the fixing plate through the plug-in port. This method can avoid inaccurate readings from the temperature and air pressure detectors after long-term operation, thereby reducing the danger of placing deflagration detection devices.
[0013] 2. This utility model, through an anti-clogging probe, pressure tap, and locking block, prevents the pressure tap from being distorted due to excessive coal dust accumulation. The probe is then removed from the main body of the coal mill. The operator rotates the anti-clogging probe to pull the locking block out of the pressure tap. After cleaning the probe, it is reinstalled on the pressure tap. This avoids the situation where coal dust clogs the pressure tap, leading to distorted measurement results and improves the effectiveness of the anti-deflagration detection device. Attached Figure Description
[0014] Figure 1 This is a three-dimensional structural diagram of the present invention;
[0015] Figure 2 for Figure 1 A left-view diagram;
[0016] Figure 3 for Figure 1 A diagram showing the view from the right.
[0017] Figure 4 for Figure 3 A three-dimensional schematic diagram of the anti-blockage probe, pressure tap, and locking block;
[0018] In the diagram: 1. Main body of the coal mill; 2. Motor; 3. Connecting pipe; 4. Storage tank; 5. Feed inlet; 6. Slide rod; 7. Limiting block; 8. Fixing plate; 9. Socket; 10. Protrusion; 11. Locking bolt; 12. Temperature detection equipment; 13. Air pressure detection equipment; 14. Discharge port; 15. Anti-clogging probe; 16. Pressure tap; 17. Clamping block. Detailed Implementation
[0019] Please see Figures 1 to 4This utility model provides a technical solution: a coal mill anti-deflagration detection device, including a coal mill body 1. The outer wall of the coal mill body 1 is fixedly connected to four sliding rods 6, so that the positions of the four sliding rods 6 are fixed, avoiding the situation where the fixed plate 8 cannot move due to different angles of the four sliding rods 6. The outer walls of the four sliding rods 6 are slidably connected to the fixed plate 8 through through holes. The fixed plate 8 slides on the four sliding rods 6, so that the fixed plate 8 can be more easily removed from the coal mill body 1. The surface of the fixed plate 8 is fixedly connected to a temperature detection device 12 and a pressure detection device 13 by fixing bolts. The model selection of the temperature detection device 12 and the pressure detection device 13 is based on actual needs, and only those that meet the working requirements are selected. The fixed plate 8 drives the temperature detection device 12 and the pressure detection device 13 to move. The temperature detection device 12 is based on the characteristic that the resistance value of a metal conductor or semiconductor changes with temperature. Resistance temperature detectors (RTDs) typically use materials such as platinum and copper, like the PT100 platinum RTD. Their resistance changes precisely with temperature variations, and the temperature is calculated by measuring this change in resistance. Similarly, the pressure detection device 13 utilizes the piezoresistive effect to convert pressure signals into electrical signals. When pressure acts on the sensor's sensitive element, the element's resistance changes, causing an imbalance in the bridge circuit and generating an electrical signal proportional to the pressure. The outer wall of the fixing plate 8 is fixedly connected to the protrusion 10. The fixing plate 8 drives the protrusion 10 to move. The surface of the fixing plate 8 has a wiring port 9, which allows the wires of the temperature detection device 12 and the air pressure detection device 13 to run to the outside of the fixing plate 8. The protrusion 10 passes through a through hole and is movably connected to the locking bolt 11. The locking bolt 11 passes through the protrusion 10 and is connected to the circular groove thread on the surface of the coal mill body 1. The locking bolt 11 fixes the position of the protrusion 10, thereby fixing the position of the fixing plate 8. Since the surface of the fixing plate 8 is provided with a sealing component, the fixing plate 8 can fit tightly against the surface of the coal mill body 1 without gaps. When the coal mill body 1... After the internal temperature detection device 12 and air pressure detection device 13 have been working for a long time, the operator can loosen the locking bolt 11, then pull the fixing plate 8 outward along the slide rod 6 to remove the temperature detection device 12 and air pressure detection device 13 for maintenance. After that, a new temperature detection device 12 and air pressure detection device 13 can be installed on the fixing plate 8, and the wires required for the temperature detection device 12 and air pressure detection device 13 can be connected to the outside of the fixing plate 8 through the plug-in port 9. In this way, the inaccurate value detection of the temperature detection device 12 and air pressure detection device 13 after long-term operation can be avoided, thereby reducing the danger of placing the deflagration detection device.
[0020] One end of the coal mill body 1 is fixedly connected to the motor 2 via a bracket. The model of the motor 2 is selected according to actual needs, and only needs to meet the working requirements. The motor 2 can drive the coal mill body 1 to work. The other end of the coal mill body 1 is fixedly connected to the connecting pipe 3. The connecting pipe 3 allows the coal blocks in the storage tank 4 to enter the coal mill body 1. The lower end of the coal mill body 1 is provided with a discharge port 14, so that the coal powder in the coal mill body 1 can be discharged from the coal mill body 1.
[0021] The ends of the four sliding rods 6 are threadedly connected to the corresponding limiting blocks 7. The limiting blocks 7 are tightened on the sliding rods 6 so that the limiting blocks 7 can be removed, thereby removing the fixing plate 8 from the sliding rods 6. The diameter of the limiting blocks 7 is larger than the diameter of the sliding rods 6.
[0022] The outer wall of the air pressure detection device 13 is provided with a pressure tap 16. The pressure tap 16 can sample the air pressure inside the coal mill body 1 and measure the air pressure inside the coal mill body 1 through the air pressure detection device 13. The end of the pressure tap 16 is in contact with the anti-clogging probe 15. The anti-clogging probe 15 can prevent coal dust from blocking the pressure tap 16.
[0023] The outer wall of the anti-clogging probe 15 is fixedly connected to two locking blocks 17. The two locking blocks 17 are inserted into the slots on the surface of the pressure tapping port 16. The locking blocks 17 can keep the anti-clogging probe 15 fixed outside the pressure tapping port 16 and prevent it from falling off.
[0024] The upper end of the connecting pipe 3 is fixedly connected to the storage tank 4, and the side wall of the storage tank 4 is machined with a feed inlet 5.
[0025] The specific usage and function of this embodiment are as follows:
[0026] In use, coal blocks are first placed in the storage tank 4 through the feed inlet 5 and then enter the coal mill body 1 through the connecting pipe 3. The external power supply to the motor 2 is then connected, and the motor 2 starts working, causing the coal mill body 1 to grind the coal blocks into coal powder, which is then discharged from the discharge outlet 14. The operator collects the discharged coal powder. When the temperature detection device 12 and the air pressure detection device 13 alarm, or when the coal mill body 1 has been working for an extended period, the motor 2 stops working, thus stopping the coal mill body 1. The operator then loosens the locking bolts 11 and pulls the fixing plate 8 outward along the slide rod 6. The fixing plate 8 removes the temperature detection device 12 and the air pressure detection device 13 from the coal mill body 1. The operator then removes the fixing bolts on the fixing plate 8, replaces the temperature detection device 12 and the air pressure detection device 13 with new ones, and installs them on the fixing plate in the same manner as described above. 8. Afterwards, the operator pushes the fixing plate 8 back to the side of the coal mill body 1, so that there is no gap between the coal mill body 1 and the fixing plate 8. The operator screws the locking bolt 11 onto the coal mill body 1 to fix the position of the fixing plate 8 and prevent the fixing plate 8 from moving when the coal mill body 1 is working. When there is too much coal powder and dust on the surface of the anti-clogging probe 15 installed on the pressure tap 16, the pressure tap 16 on the surface of the air pressure detection device 13 is moved out of the coal mill body 1 using the above method. Then the operator rotates the anti-clogging probe 15, so that the anti-clogging probe 15 drives the locking block 17 to rotate out of the locking groove of the pressure tap 16. Then the anti-clogging probe 15 is pulled out, cleaned, and then reinstalled on the pressure tap 16 using the above method to prevent the pressure tap 16 from being blocked, which would cause the measurement results of the air pressure detection device 13 to be distorted, thereby improving the working effect of the anti-deflagration detection device.
Claims
1. A coal mill anti-deflagration detection device, characterized in that: Its components include a coal mill body, the outer wall of which is fixedly connected to four sliding rods, the outer walls of which are slidably connected to a fixed plate through through holes, the surface of which is fixedly connected to a temperature detection device and a pressure detection device through fixing bolts, the outer wall of which is fixedly connected to a protrusion, the surface of which has a wire insertion port, the protrusion being movably connected to a locking bolt through a through hole, and the locking bolt being connected to a circular groove thread on the surface of the coal mill body.
2. The anti-deflagration detection device for a coal mill according to claim 1, characterized in that: One end of the main body of the coal mill is fixedly connected to the motor via a bracket, and the other end of the main body of the coal mill is fixedly connected to a connecting pipe. A discharge port is provided at the lower end of the main body of the coal mill.
3. The coal mill anti-deflagration detection device according to claim 2, characterized in that: The ends of the four slide rods are threadedly connected to corresponding limiting blocks, and the diameter of the limiting blocks is larger than the diameter of the slide rods.
4. The anti-deflagration detection device for a coal mill according to claim 3, characterized in that: The outer wall of the air pressure detection device is provided with a pressure tap, and the end of the pressure tap is attached to the anti-clogging probe.
5. The coal mill anti-deflagration detection device according to claim 4, characterized in that: The outer wall of the anti-clogging probe is fixedly connected to two locking blocks, which are inserted into the slots on the surface of the pressure tapping port.
6. The coal mill anti-deflagration detection device according to claim 5, characterized in that: The upper end of the connecting pipe is fixedly connected to the storage tank, and the side wall of the storage tank is machined with a feed inlet.