Deodorizing device for color stone metal tile production

Through the deodorization device used in the production of colored stone metal tiles, the activated carbon particles are shaken to expand the gaps and improve uniformity, which solves the problems of low odor gas treatment efficiency and flow obstruction and achieves efficient purification effect.

CN120679300AActive Publication Date: 2025-09-23TEXAS OWENS NEW BUILDING MATERIALS CO LTD
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Patent Information

Application Number
CN202510936947.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-07-08
Publication Date
2025-09-23
Estimated Expiration
2045-07-08

AI Technical Summary

Technical Problem

In the existing production process of colored stone metal tiles, the odor gas treatment efficiency is low and the uniformity of activated carbon particles is poor, resulting in poor purification effect and serious obstruction of gas flow.

Method used

A deodorization device for the production of colored stone metal tiles is designed. Through the medium-guiding shell mechanism and the medium-driving mechanism, the activated carbon particles are put into a shaking state, the gaps between the particles are expanded, the uniformity of the activated carbon particles and the gas contact surface are improved, and the gas flow obstruction is reduced.

Benefits of technology

It achieves efficient filtration of odorous gases and dust removal, improves the adsorption uniformity of activated carbon particles, reduces gas flow obstruction, and improves purification efficiency.

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Abstract

The invention relates to the technical field of colored stone metal tile production equipment, and discloses a deodorizing device for colored stone metal tile production, which comprises a medium guide shell mechanism and a medium driving mechanism. According to the odor removal device for colored stone metal tile production, odor gas can be filtered, so that dust is removed, the negative influence of the dust on activated carbon particles is reduced, in addition, the activated carbon particles can be in a shaking state, the shaking activated carbon particles can enlarge gaps among particles, and the odor removal effect is improved. In addition, the shaking active carbon particles can enable each surface of the active carbon particles to generate an effective contact surface with the peculiar smell gas, so that the adsorption uniformity of the active carbon particles is improved.
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Description

Technical Field

[0001] The invention relates to the technical field of colored stone metal tile production equipment, in particular to a deodorizing device for the production of colored stone metal tiles. Background Art

[0002] Colored stone metal tiles are roofing materials made of corrosion-resistant aluminum-zinc-coated steel sheets as a base, water-based acrylics as a binder, sintered colored sand as a surface layer, and a highly weather-resistant acrylic resin as a top coat. They are aesthetically pleasing, lightweight, and durable, and are gradually gaining widespread use. During the application and bonding process, organic additives (such as leveling agents and defoamers) are typically added to the water-based acrylic adhesive. These organic additives evaporate during the application and bonding process, producing a pungent odor. Inhalation of these odorous gases can be harmful to workers' health, necessitating the use of a deodorizing device.

[0003] For example, the Chinese patent publication number "CN222427565U" discloses "a deodorizing device for adhesive production workshops," whose main structure includes a support frame, a channel, and an activated carbon box. The top of the support frame is provided with a channel, and the inside of the channel is provided with an activated carbon box. The deodorizing device for adhesive production workshops also includes: a vibration component slidably arranged inside the channel; and collection components slidably arranged on the left and right sides of the channel. The deodorizing device for adhesive production workshops achieves the goal of driving the connecting rod up and down through the cooperation of the motor, the lead screw, and the slider, thereby driving the rotating rod up and down. Through the cooperation of the limit plate, the limit rod, and the rotating rod, it drives the hammer head to move left and right, thereby hammering the vibration plate. Through the cooperation of the vibration plate and the pull rod, it drives the vibration frame to vibrate, thereby shaking off the dust adsorbed on the outer wall of the activated carbon. Through the cooperation of the above components, the outer wall of the activated carbon can be cleaned conveniently and quickly, the adsorption capacity of the activated carbon is increased, and the purification efficiency is improved.

[0004] Obviously, the odor is treated by activated carbon adsorption, and the activated carbon particles are stored in the activated carbon box in a piled form. When the flowing gas passes through the piled activated carbon particles, the flow rate of the gas will be seriously affected. At the same time, the activated carbon particles at the front end of the gas flow will have the greatest contact with the odor, and some activated carbon particles are in dead corners and cannot have an effective contact surface with the odor, resulting in a decrease in the uniformity of the overall activated carbon particles in removing odors, and therefore resulting in a decrease in purification efficiency. Summary of the Invention

[0005] In response to the shortcomings of the existing technology, the present invention provides a deodorization device for the production of colored stone metal tiles, which can filter odorous gases, thereby removing dust and reducing the negative impact of dust on activated carbon particles. In addition, the device can put the activated carbon particles into a shaking state. The shaking activated carbon particles can expand the gaps between the particles, thereby reducing the degree of obstruction to gas flow. In addition, the shaking activated carbon particles can enable each surface of the activated carbon particles to produce an effective contact surface with the odorous gas, thereby improving the uniformity of the activated carbon particles during adsorption, and solving the above-mentioned technical problems.

[0006] To achieve the above-mentioned objectives, the present invention provides the following technical solutions: a deodorization device for the production of colored stone metal tiles, comprising a medium guiding shell mechanism, which is provided with a vertical hollow shell with a hollow interior, an activated carbon storage box placed inside the vertical hollow shell and capable of moving along the longitudinal center line of the vertical hollow shell, and an activated carbon storage chamber provided inside the activated carbon storage box and capable of storing a fixed amount of activated carbon particles; and a medium driving mechanism, which is provided with a dust filter cover installed inside the vertical hollow shell and capable of filtering the gas while rotating, a crankshaft located inside the vertical hollow shell and capable of causing the activated carbon storage box to produce longitudinal reciprocating motion, and a drive motor installed on one side of the vertical hollow shell and capable of driving the dust filter cover and the crankshaft to rotate.

[0007] Preferably, the medium guiding shell mechanism includes a longitudinal axis movable cavity arranged at the bottom center of the vertical hollow shell, a longitudinal gas flow cavity is arranged inside the vertical hollow shell, and a longitudinal limiting movable cavity with an open top is arranged at the top of the longitudinal gas flow cavity. A horizontal hollow pipe body with an integral structure therewith is arranged on one side of the vertical hollow shell, a horizontal gas flow cavity for introducing gas into the longitudinal gas flow cavity is arranged inside the horizontal hollow pipe body, and a planar mounting structure with an integral structure therewith is arranged on the other side of the vertical hollow shell, an activated carbon storage cavity for storing activated carbon particles is arranged inside the activated carbon storage box, a detachable cover is arranged at the top of the activated carbon storage box, a plurality of air holes for longitudinal gas flow are arranged on the cover and the bottom of the activated carbon storage box, and a hemispherical mounting cavity with an inwardly concave structure is arranged at the bottom center of the activated carbon storage box.

[0008] Preferably, the structural shape of the cross section of the outer wall of the activated carbon storage box is consistent with the structural shape of the cross section of the longitudinal limiting active cavity, both of which are polygonal structures, and the structural dimensions of the cross section of the outer wall of the activated carbon storage box match the structural dimensions of the cross section of the longitudinal limiting active cavity.

[0009] Preferably, during operation, activated carbon particles are stored inside the activated carbon storage cavity, and the total height of the activated carbon particles is one third of the depth of the activated carbon storage cavity, and the size of the activated carbon particles is larger than the structural radius of the air pores.

[0010] Preferably, the medium drive mechanism includes a motor fixing housing that fixes the drive motor to the end of the planar mounting structure, the rotor of the drive motor extends into the interior of the longitudinal gas flow chamber, and the end of the rotor is fixedly connected to one end of the crankshaft through a No. 1 coupling, and the other end of the crankshaft is fixedly mounted with a horizontal rotating shaft through a No. 2 coupling, the horizontal rotating shaft is located inside the horizontal gas flow chamber, and part of the shaft body of the horizontal rotating shaft is mounted inside the horizontal gas flow chamber through bearings and an internal fixing frame, one end of the horizontal rotating shaft is fixedly mounted with a dust filter cover, the outer structure of the dust filter cover is mounted on the end structure of the horizontal hollow pipe body through a bearing, and fan blades are mounted on the shaft body of the horizontal rotating shaft, the middle part of the crankshaft is mounted in a sleeve hole of a mounting sleeve through a bearing, and a movable rod is fixedly mounted on the outer circumferential surface of the mounting sleeve, and the end of the movable rod is provided with a rotating ball head with an integral structure therewith, and part of the structure of the rotating ball head is mounted inside the hemispherical mounting cavity, and the vertical end surface of the dust filter cover is provided with a plurality of filter holes for filtering gas and dust.

[0011] Preferably, after the drive motor is driven, the directional rotation of the fan blades causes the gas located around the fan blades to flow toward the inside of the longitudinal gas flow cavity.

[0012] Preferably, the structural radius of the hemispherical mounting cavity matches the structural radius of the rotating ball head, and the depth of the hemispherical mounting cavity is greater than the structural radius of the rotating ball head and smaller than the structural diameter of the rotating ball head.

[0013] Preferably, it also includes a buffer-type support mechanism, which is internally provided with a central limiting shaft capable of axially moving along the longitudinal axis active cavity, a side limiting shaft capable of allowing the vertical hollow shell to move longitudinally, and a coil spring capable of providing elastic support to the bottom of the vertical hollow shell.

[0014] Preferably, the buffering support mechanism includes a bottom support base plate, a central limiting shaft capable of axially moving along the longitudinal axis active cavity is fixedly installed at the center of the upper end surface of the bottom support base plate, the upper surface of the bottom support base plate is provided with a plurality of side limiting holes with an inwardly concave structure, and a side limiting shaft capable of axially moving along the side limiting hole is installed inside each of the side limiting holes, a top support base plate is fixedly installed on the top end of the side limiting shaft, the upper surface of the top support base plate is in contact with the bottom surface of the vertical hollow shell, and a coil spring is placed on the outer periphery of the shaft body of the side limiting shaft.

[0015] Preferably, the structural shape of the cross section of the side limiting hole is consistent with the structural shape of the cross section of the side limiting shaft, both are polygonal structures, and the structural dimensions of the cross section of the side limiting hole match the structural dimensions of the cross section of the side limiting shaft.

[0016] Compared with the prior art, the present invention provides a deodorizing device for the production of colored stone metal tiles, which has the following beneficial effects: It can filter odorous gases, thereby removing dust and reducing the negative impact of dust on activated carbon particles. In addition, the device can make the activated carbon particles in a shaking state. The shaking activated carbon particles can expand the gaps between the particles, thereby reducing the degree of obstruction to gas flow. In addition, the shaking activated carbon particles can make each surface of the activated carbon particles produce an effective contact surface with the odorous gas, thereby improving the uniformity of the activated carbon particles during adsorption. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 A perspective view of the present invention; Figure 2 is a three-dimensional cross-sectional view of the present invention; Figure 3 A perspective view of the medium guiding housing mechanism of the present invention; Figure 4 is a three-dimensional cross-sectional view of the medium guiding housing mechanism of the present invention; Figure 5 is a three-dimensional diagram of the medium driving mechanism of the present invention; Figure 6 is a three-dimensional cross-sectional view of the medium driving mechanism of the present invention; Figure 7 A three-dimensional diagram of the buffer support mechanism of the present invention; Figure 8 It is a three-dimensional cross-sectional view of the buffer support mechanism of the present invention.

[0018] Wherein: 1. Medium guide housing mechanism; 11. Vertical hollow housing; 12. Longitudinal shaft movable cavity; 13. Longitudinal gas flow cavity; 14. Horizontal hollow pipe body; 15. Horizontal gas flow cavity; 16. Planar mounting structure; 17. Longitudinal limit movable cavity; 18. Activated carbon storage box; 19. Activated carbon storage cavity; 110. Cover plate; 111. Air vent; 112. Hemispherical mounting cavity; 2. Medium drive mechanism; 21. Motor fixing housing; 22. Drive motor; 23. Rotor; 24. Coupling No. 1; 25. Crankshaft; 26. Coupling No. 2; 27. Horizontal rotation axis; 28. Internal fixing frame; 29. ​​Fan blades; 210. Dust filter cover; 211. Filter hole; 212. Movable rod; 213. Mounting sleeve; 214. Rotating ball head; 3. Buffering support mechanism; 31. Bottom support base plate; 32. Center limit shaft; 33. Side limit hole; 34. Side limit shaft; 35. Top support base plate; 36. Coil spring. DETAILED DESCRIPTION

[0019] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0020] See also Figure 1 and Figure 2 , a deodorizing device for the production of colored stone metal tiles, open the cover 110, then pour activated carbon particles into the activated carbon storage box 18, and the total height of the activated carbon particles is one-third of the depth of the activated carbon storage chamber 19, and the size of the activated carbon particles is larger than the structural radius of the air vent 111, and then close the cover 110.

[0021] To achieve directional guidance of gas, please refer to Figure 1 、 Figure 2 、 Figure 3 and Figure 4, it is necessary to set up a medium guiding shell mechanism 1, which is provided with a vertical hollow shell 11 with a hollow interior, an activated carbon storage box 18 placed inside the vertical hollow shell 11 and capable of moving along the longitudinal center line of the vertical hollow shell 11, and an activated carbon storage chamber 19 arranged inside the activated carbon storage box 18 and capable of storing a fixed amount of activated carbon particles. The gas is sucked into the longitudinal gas flow chamber 13 through the horizontal gas flow chamber 15, and then moves upward along the longitudinal gas flow chamber 13. Then the gas will enter the activated carbon storage chamber 19 through the air vents 111. When the odor meets the activated carbon particles, it will be adsorbed by the activated carbon particles, thereby realizing the deodorization function. Then, the purified gas will be discharged upward through the cover plate 110, thereby realizing the directional guidance function of the gas.

[0022] For the specific structure of the medium guide housing mechanism 1, please refer to Figure 3 and Figure 4 , including a longitudinal axis activity cavity 12 arranged at the bottom center of the vertical hollow shell 11, a longitudinal gas flow cavity 13 is arranged inside the vertical hollow shell 11, and a longitudinal limit activity cavity 17 with an open top is provided at the top of the vertical hollow shell 11 located at the top of the longitudinal gas flow cavity 13, a horizontal hollow pipe body 14 with an integral structure is provided on one side of the vertical hollow shell 11, a horizontal gas flow cavity 15 for passing gas into the longitudinal gas flow cavity 13 is provided inside the horizontal hollow pipe body 14, and a plane mounting structure 16 with an integral structure is provided on the other side of the vertical hollow shell 11, an activated carbon storage cavity 19 for storing activated carbon particles is provided inside the activated carbon storage box 18, and the top of the activated carbon storage box 18 is provided with The cover plate 110 can be removed, and the bottom of the cover plate 110 and the activated carbon storage box 18 are both provided with a plurality of air holes 111 for the longitudinal flow of gas. A hemispherical mounting cavity 112 with an inward-concave structure is provided at the bottom center of the activated carbon storage box 18. The structural shape of the cross section of the outer wall of the activated carbon storage box 18 is consistent with the structural shape of the cross section of the longitudinal limiting active cavity 17, and both are polygonal structures. The structural dimensions of the cross section of the outer wall of the activated carbon storage box 18 match the structural dimensions of the cross section of the longitudinal limiting active cavity 17. When working, activated carbon particles are stored in the interior of the activated carbon storage cavity 19, and the height of the total amount of activated carbon particles is one-third of the depth of the activated carbon storage cavity 19. The size of the activated carbon particles is larger than the structural radius of the air holes 111.

[0023] To achieve the driving function of gas and activated carbon, please refer to Figure 1 、 Figure 2 、 Figure 5 and Figure 6, it is necessary to set up a medium driving mechanism 2, which is provided with a dust filter cover 210 installed inside the vertical hollow shell 11 and capable of filtering the gas while rotating, a crankshaft 25 located inside the vertical hollow shell 11 and capable of causing the activated carbon storage box 18 to produce longitudinal reciprocating motion, and a drive motor 22 installed on one side of the vertical hollow shell 11 and capable of driving the dust filter cover 210 and the crankshaft 25 to rotate. When the drive motor 22 is started, the rotor 23 will drive the crankshaft 25 and the horizontal rotating shaft 27 to rotate. At this time, the fan blades 29 and the dust filter cover 210 rotate synchronously. The rotation of the fan blades 29 will cause the external odorous gas to be sucked into the horizontal gas flow chamber 15 through the filter hole 211, and the gas The dust in the body will be filtered by the filter holes 211, and some of the dust will adhere to the vertical surface of the dust filter cover 210. The rapidly rotating dust filter cover 210 will cause the attached dust to generate centrifugal force, so that the dust can be thrown off, and the rotating crankshaft 25 causes the activated carbon storage box 18 to produce longitudinal reciprocating motion through the movable rod 212. At this time, the activated carbon particles inside the activated carbon storage box 18 will vibrate. During the shaking process, the activated carbon particles can expand the gaps between the particles, thereby reducing the degree of obstruction to the gas flow. In addition, the shaking activated carbon particles can enable each surface thereof to produce an effective contact surface with the odorous gas, thereby improving the uniformity of the activated carbon particles during adsorption.

[0024] For the specific structure of the medium driving mechanism 2, please refer to Figure 5 and Figure 6, including a motor fixed housing 21 that fixes a drive motor 22 on the end of the planar mounting structure 16, the rotor 23 of the drive motor 22 penetrates into the interior of the longitudinal gas flow chamber 13, and the end of the rotor 23 is fixedly connected to one end of the crankshaft 25 through a No. 1 coupling 24, and the other end of the crankshaft 25 is fixedly installed with a horizontal rotating shaft 27 through a No. 2 coupling 26, the horizontal rotating shaft 27 is located inside the horizontal gas flow chamber 15, and part of the shaft body of the horizontal rotating shaft 27 is installed in the interior of the horizontal gas flow chamber 15 through a bearing and an internal fixing frame 28, one end of the horizontal rotating shaft 27 is fixedly installed with a dust filter cover 210, the outer structure of the dust filter cover 210 is installed on the end structure of the horizontal hollow pipe body 14 through a bearing, and the shaft body of the horizontal rotating shaft 27 is installed with a The fan blades 29, the middle part of the crankshaft 25 is installed in a sleeve hole of a mounting sleeve 213 through a bearing, and a movable rod 212 is fixedly installed on the outer circumference of the mounting sleeve 213, and the end of the movable rod 212 is provided with a rotating ball head 214 with an integral structure therewith, and the vertical end face of the dust filter cover 210 is provided with a plurality of filter holes 211 for filtering gas and dust, and part of the structure of the rotating ball head 214 is installed inside the hemispherical mounting cavity 112. After the drive motor 22 is driven, the directional rotation of the fan blades 29 causes the gas located around it to flow toward the inside of the longitudinal gas flow cavity 13, and the structural radius of the hemispherical mounting cavity 112 matches the structural radius of the rotating ball head 214, and the depth of the hemispherical mounting cavity 112 is greater than the structural radius of the rotating ball head 214 and smaller than the structural diameter of the rotating ball head 214.

[0025] In order to provide a buffering support effect for the vertical hollow shell 11, please refer to Figure 1 、 Figure 2 、 Figure 7 and Figure 8 , it is necessary to set up a buffer support mechanism 3, which is internally provided with a central limiting shaft 32 that can move axially along the longitudinal axis active cavity 12, a side limiting shaft 34 that can make the vertical hollow shell 11 move longitudinally, and a coil spring 36 that can elastically support the bottom of the vertical hollow shell 11. When the drive motor 22 is started, mechanical vibration will be generated. At this time, the coil spring 36 will produce the necessary elastic support function, thereby producing a buffering effect on the mechanical vibration, thereby improving the service life of the equipment.

[0026] For the specific structure of the buffer support mechanism 3, please refer to Figure 7 and Figure 8The top of the side limiting shaft 34 is fixedly installed with a top supporting base 36, and the upper surface of the top supporting base 36 abuts against the bottom surface of the vertical hollow shell 11, and a coil spring 36 is placed on the outer periphery of the shaft body of the side limiting shaft 34. The structural shape of the cross section of the side limiting hole 33 is consistent with the structural shape of the cross section of the side limiting shaft 34, both of which are polygonal structures, and the structural dimensions of the cross section of the side limiting hole 33 match the structural dimensions of the cross section of the side limiting shaft 34.

[0027] When in use, open the cover 110, and then pour activated carbon particles into the activated carbon storage box 18, and the total height of the activated carbon particles is one-third of the depth of the activated carbon storage chamber 19, and the size of the activated carbon particles is larger than the structural radius of the air vent 111, and then close the cover 110, start the drive motor 22, and the rotor 23 will drive the crankshaft 25 and the horizontal rotation shaft 27 to rotate. At this time, the fan blades 29 and the dust filter cover 210 rotate synchronously. The rotation of the fan blades 29 will cause the external odorous gas to be sucked into the horizontal gas flow chamber 15 through the filter hole 211, and the dust in the gas will be filtered by the filter hole 211, and some dust will be removed. It will adhere to the vertical surface of the dust filter cover 210. The rapidly rotating dust filter cover 210 will cause the attached dust to generate centrifugal force, so that the dust can be thrown off, and the rotating crankshaft 25 causes the activated carbon storage box 18 to produce longitudinal reciprocating motion through the movable rod 212. At this time, the activated carbon particles inside the activated carbon storage box 18 will vibrate, and the gas will enter the activated carbon storage chamber 19 through the air vents 111. When the odor meets the activated carbon particles, it will be adsorbed by the activated carbon particles, thereby realizing the deodorization function. Then, the purified gas will be discharged upward through the cover 110, thereby realizing the directional guidance function of the gas.

[0028] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.

Claims

1. A deodorizing device for producing colored stone metal tiles, characterized by: include, medium A guide housing mechanism (1) is provided with a vertical hollow shell (11) having a hollow interior, an activated carbon storage box (18) disposed inside the vertical hollow shell (11) and capable of moving along the longitudinal center line of the vertical hollow shell (11), and an activated carbon storage chamber (19) disposed inside the activated carbon storage box (18) and capable of storing a fixed amount of activated carbon particles; and a medium drive mechanism (2), which is provided with a dust filter cover (210) installed inside the vertical hollow housing (11) and capable of filtering gas while rotating, a crankshaft (25) located inside the vertical hollow housing (11) and capable of causing the activated carbon storage box (18) to produce longitudinal reciprocating motion, and a drive motor (22) installed on one side of the vertical hollow housing (11) and capable of driving the dust filter cover (210) and the crankshaft (25) to rotate.

2. The deodorizing device for producing colored stone metal tiles according to claim 1, characterized in that: The medium guiding shell mechanism (1) comprises a longitudinal shaft movable cavity (12) arranged at the bottom center of a vertical hollow shell (11), a longitudinal gas flow cavity (13) being arranged inside the vertical hollow shell (11), a longitudinal position limiting movable cavity (17) with an open top being arranged at the top of the longitudinal gas flow cavity (13), a horizontal hollow pipe body (14) being arranged on one side of the vertical hollow shell (11) and being an integral structure with the vertical hollow shell (11), a gas passage for introducing gas into the longitudinal gas flow cavity (13) being arranged inside the horizontal hollow pipe body (14). The vertical hollow shell (11) is provided with a horizontal gas flow cavity (15), and a flat mounting structure (16) having an integral structure therewith is provided on the other side thereof. An activated carbon storage cavity (19) for storing activated carbon particles is provided inside the activated carbon storage box (18), and a detachable cover plate (110) is provided at the top of the activated carbon storage box (18). The cover plate (110) and the bottom of the activated carbon storage box (18) are both provided with a plurality of air holes (111) for longitudinal flow of gas, and a hemispherical mounting cavity (112) with an inwardly concave structure is provided at the center of the bottom of the activated carbon storage box (18).

3. The deodorizing device for producing colored stone metal tiles according to claim 2, characterized in that: The structural shape of the cross section of the outer wall of the activated carbon storage box (18) is consistent with the structural shape of the cross section of the longitudinal limiting active cavity (17), both of which are polygonal structures, and the structural dimensions of the cross section of the outer wall of the activated carbon storage box (18) match the structural dimensions of the cross section of the longitudinal limiting active cavity (17).

4. The deodorizing device for producing colored stone metal tiles according to claim 3, characterized in that: During operation, activated carbon particles are stored inside the activated carbon storage chamber (19), and the total height of the activated carbon particles is one-third of the depth of the activated carbon storage chamber (19). The size of the activated carbon particles is larger than the structural radius of the air pores (111).

5. The deodorizing device for producing colored stone metal tiles according to claim 4, characterized in that: The medium driving mechanism (2) includes a motor fixing housing (21) for fixing a driving motor (22) to the end of the planar mounting structure (16), a rotor (23) of the driving motor (22) extends deep into the interior of the longitudinal gas flow chamber (13), and the end of the rotor (23) is fixedly connected to one end of the crankshaft (25) through a No. 1 coupling (24), and a horizontal rotating shaft (27) is fixedly installed on the other end of the crankshaft (25) through a No. 2 coupling (26), and the horizontal rotating shaft (27) is located inside the horizontal gas flow chamber (15), and a part of the shaft of the horizontal rotating shaft (27) is installed inside the horizontal gas flow chamber (15) through a bearing and an internal fixing frame (28), and one end of the horizontal rotating shaft (27) is fixedly connected to the crankshaft (25) through a No. 1 coupling (24). A dust filter cover (210) is fixedly installed at the end, the peripheral structure of the dust filter cover (210) is installed on the end structure of the horizontal hollow pipe body (14) through a bearing, a fan blade (29) is installed on the shaft body of the horizontal rotating shaft (27), the middle part of the crankshaft (25) is installed in a sleeve hole of a mounting sleeve (213) through a bearing, a movable rod (212) is fixedly installed on the outer circumferential surface of the mounting sleeve (213), the end of the movable rod (212) is provided with a rotating ball head (214) with an integral structure therewith, and a part of the rotating ball head (214) is installed inside the hemispherical mounting cavity (112), and a vertical end surface of the dust filter cover (210) is provided with a plurality of filter holes (211) for filtering gas and dust.

6. The deodorizing device for producing colored stone metal tiles according to claim 5, characterized in that: After the drive motor (22) is driven, the directional rotation of the fan blades (29) causes the gas located around them to flow toward the interior of the longitudinal gas flow chamber (13).

7. The deodorizing device for producing colored stone metal tiles according to claim 6, characterized in that: The structural radius of the hemispherical mounting cavity (112) matches the structural radius of the rotating ball head (214), and the depth of the hemispherical mounting cavity (112) is greater than the structural radius of the rotating ball head (214) and smaller than the structural diameter of the rotating ball head (214).

8. A deodorizing device for producing colored stone metal tiles according to any one of claims 2 to 7, characterized in that: It also includes a buffer-type support mechanism (3), which is internally provided with a central limiting shaft (32) capable of axial movement along the longitudinal axis movable cavity (12), a side limiting shaft (34) capable of enabling the vertical hollow shell (11) to move longitudinally, and a coil spring (36) capable of providing elastic support to the bottom of the vertical hollow shell (11).

9. The deodorizing device for producing colored stone metal tiles according to claim 8, characterized in that: The buffer support mechanism (3) includes a bottom support base plate (31), a center limit shaft (32) capable of axially moving along the longitudinal axis active cavity (12) is fixedly installed at the center of the upper end surface of the bottom support base plate (31), a plurality of side limit holes (33) with an inner concave structure are provided on the upper surface of the bottom support base plate (31), a side limit shaft (34) capable of axially moving along the side limit hole (33) is installed inside each of the side limit holes (33), a top support base plate (36) is fixedly installed at the top end of the side limit shaft (34), the upper surface of the top support base plate (36) is in contact with the bottom surface of the vertical hollow shell (11), and a coil spring (36) is placed on the outer periphery of the shaft body of the side limit shaft (34).

10. The deodorizing device for producing colored stone metal tiles according to claim 9, characterized in that: The structural shape of the cross section of the side limiting hole (33) is consistent with the structural shape of the cross section of the side limiting shaft (34), both of which are polygonal structures, and the structural dimensions of the cross section of the side limiting hole (33) match the structural dimensions of the cross section of the side limiting shaft (34).

Citation Information

Patent Citations

  • Plate-shaped disposable active charcoal filter

    CH482458A

  • Activated carbon cotton dry filter

    CN216726335U

  • Deodorizing device for adhesive production workshop

    CN222427565U

  • Water filtration device using activated carbon

    KR101942380B1

  • AU2017210540A1