A shock-absorbing cyclone dust collector with wind concentration function
By designing a shock-absorbing cyclone dust collector with wind concentration function, the shock-absorbing flip mechanism is used to lower the cone cylinder and rotate it to a horizontal state, the problem of inconvenient cleaning of the cyclone dust collector is solved and cleaning efficiency and reliability are improved.
Patent Information
- Application Number
- CN202411165806.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-23
- Publication Date
- 2025-05-13
- Estimated Expiration
- 2044-08-23
AI Technical Summary
Cyclone dust collectors are usually placed vertically and at a certain distance from the ground, which causes inconvenience in operation of staff during cleaning and inefficient cleaning.
A shock-absorbing cyclone dust collector with wind concentration function is designed. The conical cylinder is lowered and rotated to a horizontal state through the shock-absorbing flip mechanism, which facilitates cleaning of the staff and shock-absorbing the support frame through the elastic connecting plate.
It realizes convenient cleaning of the cone-shaped barrel, improves cleaning efficiency and convenience, and reduces the chance of damage of the cone-shaped barrel through shock absorption and improves reliability.
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Figure CN118768098B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of cyclone dust collectors, and in particular to a shock-absorbing cyclone dust collector with a wind force concentration function. Background Art
[0002] Cyclone dust collector is a common industrial dust removal equipment used to separate solid particles or droplets from airflow. It uses the centrifugal force generated by the rotating airflow to capture particulate matter and is usually used in dust control and exhaust gas treatment systems in various industrial processes. When the cyclone dust collector is in use, in order to ensure its continued efficient operation, the cyclone dust collector needs to be cleaned regularly. However, the cyclone dust collector is usually placed vertically in the working area and at a certain distance from the ground. When the staff cleans the inside, the operation is inconvenient and the cleaning efficiency is low.
[0003] Therefore, a shock-absorbing cyclone dust collector with a wind concentration function has been developed, which can lower the conical tube and rotate it to a horizontal state to facilitate cleaning by workers and improve the convenience and efficiency of cleaning. Summary of the invention
[0004] In order to overcome the shortcomings that cyclone dust collectors are usually placed vertically in the working area and at a certain distance from the ground, which makes it inconvenient for workers to operate and has low cleaning efficiency when cleaning the inside of the cyclone dust collector, the present invention provides a shock-absorbing cyclone dust collector with a wind concentration function that can lower the conical barrel and rotate it to a horizontal state to facilitate cleaning by workers, thereby improving cleaning convenience and efficiency.
[0005] Technical solution: A shock-absorbing cyclone dust collector with a wind concentration function, including a base, an elastic connecting plate, a first connecting frame, a support frame, a shock-absorbing flipping mechanism and a cyclone dust removal mechanism. The base has two left and right parts, each of which is connected to the first connecting frame through a plurality of elastic connecting plates, and the middle of the first connecting frame is connected to the support frame. A shock-absorbing flipping mechanism with shock-absorbing and flipping functions is arranged between the support frames, and a cyclone dust removal mechanism capable of removing dust and purifying the air is arranged on the shock-absorbing flipping mechanism.
[0006] In addition, it is particularly preferred that the shock-absorbing flipping mechanism includes a first guide frame, a second connecting frame, a guide rod, a sliding frame, a spring, a rotating connecting piece and a mounting frame, the first guide frame is connected to the upper side of the support frame, the second connecting frame is connected between the upper parts of the first guide frames, the guide rods are connected to the front and rear sides of the first guide frame, the two adjacent guide rods are connected to the sliding frame by a damping sliding connection, the guide rods are connected to the connected sliding frames with springs, the sliding frames are rotatably connected to rotating connecting pieces, the rotating connecting pieces pass through adjacent first guide frames, and the mounting frames are connected between the rotating connecting pieces.
[0007] In addition, it is particularly preferred that the cyclone dust removal mechanism includes a conical cylinder, an air inlet pipe, an air outlet pipe and a discharge pipe, the mounting frame is connected to the conical cylinder, the air inlet pipe is connected to the rear side of the upper part of the conical cylinder, the air outlet pipe is connected to the upper side of the conical cylinder, and the discharge pipe is connected to the lower side of the conical cylinder. When the air needs to be purified, the air is passed into the conical cylinder from the air inlet pipe, and a strong vortex is formed in the conical cylinder by the gas, so that the heavier dust particles are thrown to the cylinder wall and slide down to the discharge pipe under the action of gravity, while the cleaner gas forms an upward airflow in the center of the cyclone and is discharged through the air outlet pipe at the top. When the conical cylinder needs to be cleaned, the mounting frame is moved downward, driving the sliding frame to move downward along the guide rod, the spring is squeezed and contracted, and then the mounting frame is rotated to a horizontal state, driving the rotating connecting member to rotate, and the rotating connecting member is limited by the first guide frame.
[0008] Furthermore, it is particularly preferred that flanges are provided on the air inlet pipe, the air outlet pipe and the material discharge pipe.
[0009] In addition, it is particularly preferred that a reinforcement mechanism is also included, the reinforcement mechanism includes a fixed seat, a rotating shaft, a reinforcement frame, a slotted column and a pressing piece, the first guide frame is connected to a fixed seat on the side away from each other on the upper and lower parts, the two fixed seats on the same side are rotatably connected with a rotating shaft, the upper part of the rotating shaft is connected to a reinforcement frame, the reinforcement frame is in contact with the conical tube, the lower part of the rotating shaft is connected to the slotted column, the upper side of the sliding frame is connected to a pressing piece, the slotted column is slidably connected to the adjacent pressing piece through a spiral groove, when the sliding frame moves downward, it drives the pressing piece to move downward, so that the pressing piece triggers the slotted column to rotate, drives the rotating shaft on the fixed seat to rotate, so that the reinforcement frame disengages from the conical tube, when the sliding frame moves upward to reset, it drives the pressing piece to move upward to reset, causes the slotted column to rotate, drives the rotating shaft to rotate, and makes the reinforcement frame contact with the conical tube again.
[0010] Furthermore, it is particularly preferred that the reinforcement frames are all arc-shaped.
[0011] In addition, it is particularly preferred that an air inlet regulating mechanism is also included, which includes a first connecting tube, a hose, a second connecting tube, a second guide frame, a pressing rod, a first gear, a servo motor and a second gear. The first connecting tube is detachably connected to the rear side of the air inlet tube by multiple bolts, the hose is connected to the rear side of the first connecting tube, the second connecting tube is connected to the rear side of the hose, the first connecting tube and the second connecting tube are both connected to the second guide frame on the outside, a plurality of pressing rods are slidably connected between the second guide frames, the first connecting tube and the second connecting tube are both rotatably connected to the outside of the first connecting tube, the first gear is located outside the second guide frame, the first gear is slidably connected to the pressing rod, the first connecting tube and the second connecting tube are both connected to the servo motor at the bottom, the second gear is connected to the output shaft of the servo motor, the second gear is meshed with the adjacent first gear, the servo motor is started to rotate the second gear to mesh with the first gear, thereby driving the first gear to rotate, so that the pressing rod moves inward on the second guide frame to squeeze the hose and reduce the internal space of the hose.
[0012] In addition, it is particularly preferred that a temperature control mechanism is also included, the temperature control mechanism includes a mounting sleeve and a heating tube, the mounting sleeve is connected to the outer side of the middle part of the conical tube, and a plurality of heating tubes are connected to the mounting sleeve.
[0013] Furthermore, it is particularly preferred that the mounting sleeve is made of a heat-conducting material.
[0014] In addition, it is particularly preferred that a knocking mechanism is also included, which includes a mounting ring, a motor and a knocking piece. The mounting ring is connected to the outer side of the lower part of the conical cylinder, the motor is connected to the front and rear sides of the mounting ring, and multiple knocking pieces are movably connected to the motor output shaft.
[0015] Compared with the prior art, the present invention has the following advantages: 1. The present invention moves the mounting frame downward, drives the sliding frame downward, and then rotates the mounting frame to a horizontal state, drives the rotating connecting member to rotate, and the first guide frame limits the rotating connecting member, thereby achieving the effect of enabling the conical cylinder to descend and rotate to a horizontal state, so as to facilitate cleaning by the staff and improve the convenience and efficiency of cleaning.
[0016] 2. When the cone-shaped cylinder of the present invention generates vibration during operation, the mounting frame vibrates accordingly, causing the sliding frame to slide on the guide rod. The spring rebounds after being squeezed and contracted. When the cone-shaped cylinder vibrates, the supporting frame also vibrates accordingly. The supporting frame is damped by the elastic connecting plate, thereby achieving the effect of damping the cone-shaped cylinder, reducing the probability of damage to the cone-shaped cylinder, and improving the reliability of the cone-shaped cylinder.
[0017] 3. When the sliding frame of the present invention moves upward to reset, it drives the pressing piece to move upward to reset, so that the slotted column rotates, drives the rotating shaft to rotate, and makes the reinforcement frame contact with the conical tube again, thereby achieving the effect of being able to reinforce the conical tube and ensuring that the conical tube remains in a vertical state during operation.
[0018] 4. The present invention starts the servo motor to rotate the second gear and mesh with the first gear, thereby driving the first gear to rotate, so that the pressing rod moves inward on the second guide frame to squeeze the hose, thereby reducing the internal space of the hose, thereby adjusting the speed of air entering, making the incoming air more concentrated, and improving the dust removal effect.
[0019] 5. When the present invention removes dust in the conical cylinder, the heating tube is heated, and the heat is conducted to the conical cylinder through the mounting sleeve, thereby achieving the effect of being able to adjust the temperature in the conical cylinder and ensuring that the conical cylinder can maintain the best operating state under various conditions.
[0020] 6. The present invention starts the motor on the mounting ring to rotate and swing the knocking piece to knock the conical tube, thereby accelerating the falling speed of dust on the inner wall of the conical tube and preventing dust from adhering to the inner wall of the conical tube. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] Figure 1 It is a schematic diagram of the three-dimensional structure of the present invention.
[0022] Figure 2 It is a partial three-dimensional structure exploded diagram of the present invention.
[0023] Figure 3 It is a schematic diagram of the three-dimensional structure of the shock-absorbing flipping mechanism of the present invention.
[0024] Figure 4 It is a three-dimensional structure explosion diagram of the shock-absorbing flipping mechanism of the present invention.
[0025] Figure 5 It is a partial three-dimensional structure explosion diagram of the shock-absorbing flipping mechanism of the present invention.
[0026] Figure 6 It is a schematic diagram of the three-dimensional structure of the cyclone dust removal mechanism of the present invention.
[0027] Figure 7 It is a schematic diagram of the three-dimensional structure of the reinforcement mechanism of the present invention.
[0028] Figure 8 It is a schematic diagram of the first three-dimensional structure of the air inlet adjustment mechanism of the present invention.
[0029] Fig. 9 It is a schematic diagram of the second three-dimensional structure of the air inlet adjustment mechanism of the present invention.
[0030] Fig.10 It is a partial three-dimensional structural schematic diagram of the air inlet adjustment mechanism of the present invention.
[0031] Fig.11 It is a three-dimensional structural schematic diagram of the temperature control mechanism of the present invention.
[0032] Fig.12 It is a schematic diagram of the first three-dimensional structure of the striking mechanism of the present invention.
[0033] Fig.13 It is a schematic diagram of the second three-dimensional structure of the striking mechanism of the present invention.
[0034] In the figure: 1, base, 2, elastic connecting plate, 3, first connecting frame, 4, supporting frame, 5, shock absorbing flip mechanism, 50, first guide frame, 501, second connecting frame, 51, guide rod, 52, sliding frame, 53, spring, 54, rotating connecting piece, 55, mounting frame, 6, cyclone dust removal mechanism, 60, conical cylinder, 61, air inlet pipe, 62, air outlet pipe, 63, discharge pipe, 7, reinforcement mechanism, 70, fixed seat, 71, Rotating shaft, 72, reinforcement frame, 73, slotted column, 74, pressing piece, 8, air inlet adjustment mechanism, 80, first connecting pipe, 81, hose, 82, second connecting pipe, 83, second guide frame, 84, pressing rod, 85, first gear, 86, servo motor, 87, second gear, 9, temperature control mechanism, 90, mounting sleeve, 91, heating tube, 10, knocking mechanism, 101, mounting ring, 102, motor, 103, knocking piece. DETAILED DESCRIPTION
[0035] In order to make the purpose, technical scheme and advantages of the present invention clearer, the present invention is further described in detail below in conjunction with specific embodiments and with reference to the accompanying drawings. It should be understood that these descriptions are only exemplary and are not intended to limit the scope of the present invention. In addition, in the following description, the description of well-known structures and technologies is omitted to avoid unnecessary confusion of the concept of the present invention.
[0036] A shock-absorbing cyclone dust collector with wind concentration function, such as Figure 1-Figure 13 As shown, it includes a base 1, an elastic connecting plate 2, a first connecting frame 3, a support frame 4, a shock-absorbing flipping mechanism 5 and a cyclone dust removal mechanism 6. The base 1 has two left and right parts, and the base 1 is connected to the first connecting frame 3 through five elastic connecting plates 2. The middle part of the first connecting frame 3 is connected to the support frame 4. The shock-absorbing flipping mechanism 5 is provided between the support frames 4, and the cyclone dust removal mechanism 6 is provided on the shock-absorbing flipping mechanism 5.
[0037] like Figure 1 , Figure 3 , Figure 4 and Figure 5As shown, the shock-absorbing flipping mechanism 5 includes a first guide frame 50, a second connecting frame 501, a guide rod 51, a sliding frame 52, a spring 53, a rotating connecting piece 54 and a mounting frame 55. The first guide frame 50 is connected to the upper side of the support frame 4, the second connecting frame 501 is connected between the upper parts of the first guide frame 50, the front and rear sides of the first guide frame 50 are connected to the guide rod 51, the two adjacent guide rods 51 are connected to the sliding frame 52 through a damping sliding connection, the guide rods 51 are connected to the connected sliding frames 52 with springs 53, the sliding frames 52 are rotatably connected with rotating connecting pieces 54, the rotating connecting pieces 54 pass through the adjacent first guide frames 50, and the mounting frames 55 are connected between the rotating connecting pieces 54.
[0038] like Figure 1 and Figure 6 As shown, the cyclone dust removal mechanism 6 includes a conical cylinder 60, an air inlet pipe 61, an air outlet pipe 62 and a discharge pipe 63. The conical cylinder 60 is connected to the mounting frame 55. The air inlet pipe 61 is connected to the upper rear side of the conical cylinder 60, the air outlet pipe 62 is connected to the upper side of the conical cylinder 60, and the discharge pipe 63 is connected to the lower side of the conical cylinder 60. Flanges are provided on the air inlet pipe 61, the air outlet pipe 62 and the discharge pipe 63 to facilitate docking of the pipelines.
[0039] When using the present invention, first place the base 1 in the air purification area. When the air needs to be purified, the air is passed from the air inlet pipe 61 into the conical cylinder 60. A strong vortex is formed in the conical cylinder 60 by the gas, so that the heavier dust particles are thrown to the cylinder wall and slide down to the discharge pipe 63 under the action of gravity, while the cleaner gas forms an upward airflow in the center of the cyclone and is discharged through the air outlet pipe 62 at the top. When the conical cylinder 60 vibrates during operation, the mounting frame 55 vibrates accordingly, so that the sliding frame 52 slides on the guide rod 51, and the spring 53 rebounds after being squeezed and contracted. When the conical cylinder 60 vibrates, the support frame 4 also vibrates accordingly, and the support frame 4 is damped by the elastic connecting plate 2, thereby playing a role in the conical cylinder 60. The cone tube 60 is cleaned by the mounting frame 55, and the sliding frame 52 is driven to move downward along the guide rod 51, and the spring 53 is squeezed and contracted, and then the mounting frame 55 is rotated to a horizontal state, driving the rotating connecting member 54 to rotate, and the rotating connecting member 54 is limited by the first guide frame 50, so that the cone tube 60 can be lowered and rotated to a horizontal state, so that the staff can clean it, and the cleaning convenience and efficiency can be improved. After the cone tube 60 is cleaned, the mounting frame 55 is restored to a vertical state, and then the spring 53 rebounds, so that the sliding frame 52 moves upward and resets, thereby driving the mounting frame 55 to move upward and reset.
[0040] like Figure 1 and Figure 7As shown, a reinforcement mechanism 7 is also included, and the reinforcement mechanism 7 includes a fixed seat 70, a rotating shaft 71, a reinforcement frame 72, a slotted column 73 and a pressing piece 74. The fixed seat 70 is connected to the upper and lower sides of the first guide frame 50 that are away from each other, and the two fixed seats 70 on the same side are rotatably connected with the rotating shaft 71. The upper part of the rotating shaft 71 is connected to the reinforcement frame 72. The reinforcement frame 72 is in contact with the conical cylinder 60. The reinforcement frame 72 is arc-shaped to facilitate reinforcement of the conical cylinder 60. The lower part of the rotating shaft 71 is connected to the slotted column 73. The upper side of the sliding frame 52 is connected to the pressing piece 74. The slotted column 73 is slidably connected to the adjacent pressing piece 74 through a spiral groove.
[0041] By using the reinforcement mechanism 7 of the present device, the conical tube 60 can be reinforced. When the sliding frame 52 moves downward, it drives the pressing piece 74 to move downward, so that the pressing piece 74 triggers the slotted column 73 to rotate, and drives the rotating shaft 71 on the fixed seat 70 to rotate, so that the reinforcement frame 72 is separated from the conical tube 60. When the sliding frame 52 moves upward to reset, it drives the pressing piece 74 to move upward to reset, so that the slotted column 73 rotates, and drives the rotating shaft 71 to rotate, so that the reinforcement frame 72 contacts with the conical tube 60 again, thereby reinforcing the conical tube 60 and ensuring that the conical tube 60 remains in a vertical state during operation.
[0042] like Figure 1 , Figure 8 , Fig. 9 and Fig.10 As shown, it also includes an air inlet adjustment mechanism 8, which includes a first connecting pipe 80, a hose 81, a second connecting pipe 82, a second guide frame 83, a pressing rod 84, a first gear 85, a servo motor 86 and a second gear 87. The first connecting pipe 80 is detachably connected to the rear side of the air inlet pipe 61 through six bolts, the hose 81 is connected to the rear side of the first connecting pipe 80, and the second connecting pipe 82 is connected to the rear side of the hose 81. The outer sides of the first connecting pipe 80 and the second connecting pipe 82 are both connected to the second guide frame 83, and six pressing rods 84 are slidably connected between the second guide frames 83. The outer sides of the first connecting pipe 80 and the second connecting pipe 82 are both rotatably connected to the first gear 85, the first gear 85 is located outside the second guide frame 83, and the first gear 85 is slidably connected to the pressing rod 84. The lower parts of the first connecting pipe 80 and the second connecting pipe 82 are both connected to the servo motor 86, and the output shaft of the servo motor 86 is connected to the second gear 87, and the second gear 87 is meshed with the adjacent first gear 85.
[0043] The air intake adjustment mechanism 8 of the device can be used to adjust the speed of air intake. The first connecting pipe 80 is installed on the air intake pipe 61 by bolts, and then the air enters the hose 81 from the second connecting pipe 82, and then enters the air intake pipe 61 from the first connecting pipe 80. When the air intake needs to be more concentrated, the servo motor 86 is started to rotate the second gear 87 to engage with the first gear 85, driving the first gear 85 to rotate, so that the pressing rod 84 moves inward on the second guide frame 83 to squeeze the hose 81, thereby reducing the internal space of the hose 81, thereby adjusting the speed of air intake, making the air intake more concentrated, and improving the dust removal effect.
[0044] like Figure 1 and Fig.11 As shown, a temperature control mechanism 9 is also included. The temperature control mechanism 9 includes a mounting sleeve 90 and a heating tube 91. The mounting sleeve 90 is connected to the outer side of the middle part of the conical cylinder 60. The mounting sleeve 90 is made of a heat-conducting material to facilitate heat conduction. A plurality of heating tubes 91 are connected to the mounting sleeve 90.
[0045] By using the temperature control mechanism 9 of the device, the temperature inside the conical cylinder 60 can be adjusted. When dust removal is performed inside the conical cylinder 60, the heating tube 91 is heated, and the heat is conducted to the conical cylinder 60 through the mounting sleeve 90, thereby playing a role in adjusting the temperature inside the conical cylinder 60 and ensuring that the conical cylinder 60 can maintain the best operating state under various conditions.
[0046] like Figure 1 and Fig.12 As shown, it also includes a knocking mechanism 10, which includes a mounting ring 101, a motor 102 and a knocking piece 103. The mounting ring 101 is connected to the outer side of the lower part of the conical cylinder 60, and the motor 102 is connected to the front and rear sides of the mounting ring 101. Three knocking pieces 103 are movably connected to the output shaft of the motor 102.
[0047] The knocking mechanism 10 of the device can be used to knock on the conical tube 60. The motor 102 on the mounting ring 101 is started to rotate the knocking piece 103 to knock on the conical tube 60, thereby accelerating the falling speed of dust on the inner wall of the conical tube 60 and preventing dust from adhering to the inner wall of the conical tube 60.
[0048] The above embodiments are provided for persons familiar with the art to implement or use the present invention. Personnel familiar with the art can make various modifications or changes to the above embodiments without departing from the inventive concept of the present invention. Therefore, the protection scope of the present invention is not limited to the above embodiments, but should be the maximum scope of the innovative features mentioned in the claims.
Claims
1. A shock-absorbing cyclone dust collector with wind concentration function, characterized in that: The invention comprises a base (1), an elastic connection plate (2), a first connection frame (3), a support frame (4), a shock-absorbing and flipping mechanism (5) and a cyclone dust removal mechanism (6); the base (1) has two left and right parts; the base (1) is connected to the first connection frame (3) via a plurality of elastic connection plates (2); the middle part of the first connection frame (3) is connected to the support frame (4); a shock-absorbing and flipping mechanism (5) having shock-absorbing and flipping functions is provided between the support frames (4); and the shock-absorbing and flipping mechanism (5) is provided with a cyclone dust removal mechanism (6) capable of removing dust from and purifying air; The shock-absorbing flip mechanism (5) comprises a first guide frame (50), a second connecting frame (501), a guide rod (51), a sliding frame (52), a spring (53), a rotating connecting piece (54) and a mounting frame (55); the upper side of the support frame (4) is connected to the first guide frame (50); the upper part of the first guide frame (50) is connected to the second connecting frame (501); the front and rear sides of the first guide frame (50) are connected to the guide rod (51); the two adjacent guide rods (51) are connected to the sliding frame (52) in a damping sliding manner; the guide rods (51) and the connected sliding frames (52) are connected to springs (53); the sliding frames (52) are rotatably connected to the rotating connecting pieces (54); the rotating connecting pieces (54) pass through the adjacent first guide frames (50); and the mounting frame (55) is connected between the rotating connecting pieces (54); The invention also comprises a reinforcing mechanism (7), the reinforcing mechanism (7) comprising a fixed seat (70), a rotating shaft (71), a reinforcing frame (72), a slotted column (73) and a pressing member (74); the fixed seat (70) is connected to the upper and lower sides of the first guide frame (50) which are away from each other; the rotating shaft (71) is rotatably connected between the two fixed seats (70) on the same side; the upper part of the rotating shaft (71) is connected to the reinforcing frame (72); the reinforcing frame (72) is in contact with the conical cylinder (60); the lower part of the rotating shaft (71) is connected to the slotted column (73); the upper side of the sliding frame (52) is connected to the pressing member (74); 74), the slotted columns (73) are slidably connected to adjacent pressing pieces (74) through spiral grooves. When the sliding frame (52) moves downward, the pressing piece (74) is driven to move downward, so that the pressing piece (74) triggers the slotted columns (73) to rotate, driving the rotating shaft (71) on the fixed seat (70) to rotate, so that the reinforcement frame (72) is separated from the conical cylinder (60). When the sliding frame (52) moves upward to reset, it drives the pressing piece (74) to move upward to reset, so that the slotted columns (73) rotate, driving the rotating shaft (71) to rotate, so that the reinforcement frame (72) contacts the conical cylinder (60) again.
2. A shock-absorbing cyclone dust collector with wind force concentration function according to claim 1, characterized in that: The cyclone dust removal mechanism (6) comprises a conical cylinder (60), an air inlet pipe (61), an air outlet pipe (62) and a discharge pipe (63). The mounting frame (55) is connected to the conical cylinder (60). The upper rear side of the conical cylinder (60) is connected to the air inlet pipe (61). The upper side of the conical cylinder (60) is connected to the air outlet pipe (62). The lower side of the conical cylinder (60) is connected to the discharge pipe (63). When air purification is required, air is introduced into the conical cylinder (60) from the air inlet pipe (61). A strong vortex is formed in the conical cylinder (60) by the gas, so that heavier dust is removed. The particles are thrown toward the cylinder wall and slide down to the discharge pipe (63) under the action of gravity, while the relatively clean gas forms an upward airflow in the center of the cyclone and is discharged through the air outlet pipe (62) at the top. When the conical cylinder (60) needs to be cleaned, the mounting frame (55) is moved downward, driving the sliding frame (52) to move downward along the guide rod (51), the spring (53) is squeezed and contracted, and then the mounting frame (55) is rotated to a horizontal state, driving the rotating connecting member (54) to rotate, and the rotating connecting member (54) is limited by the first guide frame (50).
3. A shock-absorbing cyclone dust collector with wind force concentration function according to claim 2, characterized in that: Flanges are provided on the air inlet pipe (61), the air outlet pipe (62) and the material outlet pipe (63).
4. A shock-absorbing cyclone dust collector with wind force concentration function according to claim 3, characterized in that: The reinforcement frames (72) are all arc-shaped.
5. A shock-absorbing cyclone dust collector with wind force concentration function according to claim 4, characterized in that: The air inlet regulating mechanism (8) is also included. The air inlet regulating mechanism (8) includes a first connecting pipe (80), a hose (81), a second connecting pipe (82), a second guide frame (83), a pressing rod (84), a first gear (85), a servo motor (86) and a second gear (87). The first connecting pipe (80) is detachably connected to the rear side of the air inlet pipe (61) via a plurality of bolts. The hose (81) is connected to the rear side of the first connecting pipe (80). The hose (81) is connected to the rear side of the second connecting pipe (82). The second guide frame (83) is connected to the outer sides of the first connecting pipe (80) and the second connecting pipe (82). The second guide frame (83) is slidably connected to a plurality of pressing rods (84). The first connecting pipe (80) and the second connecting pipe (82) are detachably connected to the rear side of the air inlet pipe (61). The outer side of the connecting pipe (82) is rotatably connected to a first gear (85), the first gear (85) is located outside the second guide frame (83), the first gear (85) is slidably connected to the pressing rod (84), the lower parts of the first connecting pipe (80) and the second connecting pipe (82) are connected to a servo motor (86), the output shaft of the servo motor (86) is connected to a second gear (87), the second gear (87) is meshed with the adjacent first gear (85), the servo motor (86) is started, the second gear (87) rotates and meshes with the first gear (85), driving the first gear (85) to rotate, so that the pressing rod (84) moves inward on the second guide frame (83) to squeeze the hose (81), thereby reducing the internal space of the hose (81).
6. A shock-absorbing cyclone dust collector with wind force concentration function according to claim 5, characterized in that: It also includes a temperature control mechanism (9), which includes a mounting sleeve (90) and a heating tube (91). The mounting sleeve (90) is connected to the outer side of the middle portion of the conical cylinder (60), and a plurality of heating tubes (91) are connected to the mounting sleeve (90).
7. A shock-absorbing cyclone dust collector with wind force concentration function according to claim 6, characterized in that: The mounting sleeve (90) is made of a heat-conducting material.
8. A shock-absorbing cyclone dust collector with wind force concentration function according to claim 7, characterized in that: The invention also comprises a knocking mechanism (10), the knocking mechanism (10) comprising a mounting ring (101), a motor (102) and a knocking piece (103), the mounting ring (101) being connected to the outer side of the lower part of the conical cylinder (60), the motor (102) being connected to the front and rear sides of the mounting ring (101), and a plurality of knocking pieces (103) being movably connected to the output shaft of the motor (102).
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