Slaughter workshop disinfection device
By setting up multiple equidistant ozone disinfection machines on the top of the slaughter workshop and equipped with reciprocating moving mechanisms, the ozone is evenly distributed downward, the problem of uneven ozone distribution is solved and the overall disinfection effect of the slaughter workshop is improved.
Patent Information
- Application Number
- CN202421801369.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-29
- Publication Date
- 2025-05-27
- Estimated Expiration
- 2034-07-29
AI Technical Summary
In the existing disinfection methods of slaughtering workshops, the ozone distribution is uneven, resulting in poor disinfection effect at local locations.
A slaughter workshop disinfection device is designed, including multiple ozone disinfection machines distributed equally along the width direction of the slaughter workshop. The ozone disinfection machine is arranged on the top of the slaughter workshop, the air outlet is distributed downward, and a reciprocating movement mechanism is equipped to make the ozone disinfection machine move slowly along the length direction of the slaughter workshop and emit ozone evenly downward.
By moving the ozone disinfection machine and evenly dispersing ozone downward, the uniformity of ozone dispersing partially in the slaughter workshop is improved, the problem of poor disinfection effect in local locations is solved, and the disinfection effect of the entire slaughter workshop is improved.
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Figure CN222899798U_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the disinfection technology of slaughterhouses, and particularly to a disinfection device for slaughterhouses. Background Art
[0002] In the process of beef slaughter and processing, in order to ensure the environmental quality of the slaughterhouse, it is usually necessary to disinfect the air in the slaughterhouse. At present, a common disinfection method in slaughterhouses is to set up multiple ozone disinfection machines at different positions inside the slaughterhouse. The multiple ozone disinfection machines work simultaneously, emitting ozone at different positions inside the slaughterhouse to disinfect the air inside the entire slaughterhouse.
[0003] However, in actual use, the area of the slaughterhouse is large, and the position of each ozone disinfection machine is fixed. Therefore, during the actual disinfection process, the ozone concentration around the ozone disinfection machine is too high, which is likely to affect human health. The ozone concentration around the area far from the ozone disinfection machine is too low, or even there is no ozone, resulting in uneven dispersion of ozone inside the entire slaughterhouse and poor disinfection effect at local positions in the slaughterhouse. Utility Model Content
[0004] The present application provides a disinfection device for slaughterhouses to solve the problem of uneven ozone distribution and poor disinfection effect at local positions in the slaughterhouse when disinfecting the inside of the slaughterhouse with ozone.
[0005] The present application provides a disinfection device for slaughterhouses, including ozone disinfection machines. The number of the ozone disinfection machines is multiple and they are equidistantly distributed along the width direction of the slaughterhouse, and the ozone disinfection machines are arranged on the top of the slaughterhouse, and the air outlets of the ozone disinfection machines face downwards.
[0006] Each ozone disinfection machine is connected with a reciprocating movement mechanism that can drive it to reciprocate along the length direction of the slaughterhouse, and the reciprocating movement mechanism is installed on the top of the slaughterhouse.
[0007] Optionally, the reciprocating movement mechanism includes a driving wheel and a driven wheel. The driving wheel is installed at one end of the slaughterhouse, the driven wheel is installed at the other end of the slaughterhouse, and an annular transmission rope is tensioned and wound between the driving wheel and the driven wheel.
[0008] The transmission rope is connected with the ozone disinfection machine through a mounting frame.
[0009] The driving wheel is connected with a reduction motor that can intermittently rotate forward and backward.
[0010] Optionally, the mounting bracket includes an annular plate and a pressing plate. Screws are fixed at the four corners of the pressing plate. Through holes corresponding to the screws one by one are formed on the annular plate. The end of each screw penetrates through the corresponding through hole and is engaged with a nut. The ozone disinfection machine is tightly pressed between the annular plate and the pressing plate, and the air outlet of the ozone disinfection machine is located in the hollow part of the annular plate;
[0011] A connecting piece is fixed to the upper end of the pressing plate, and the connecting piece is fixedly connected to the transmission rope.
[0012] Optionally, the connecting piece includes a hoop, and a connecting rod is fixed to the lower end of the hoop;
[0013] The hoop is fixed on the transmission rope, and the connecting rod is fixedly connected to the upper end of the pressing plate.
[0014] Optionally, a gas collecting hood is hermetically connected to the lower end of the annular plate, and the hollow part of the annular plate is located inside the gas collecting hood. A gas distribution pipe distributed along the width direction of the slaughterhouse is hermetically connected to the lower end of the gas collecting hood, and the end of the gas distribution pipe extends to the side of the ozone disinfection machine. A plurality of equally spaced jet heads are connected to the lower end of the gas distribution pipe;
[0015] The outer wall of the ozone disinfection machine is closely attached to the upper end of the annular plate.
[0016] Optionally, rubber pads are fixed to the upper end of the annular plate and the lower end of the pressing plate respectively.
[0017] Optionally, a first limit switch and a second limit switch are further included. The first limit switch is installed below the driving wheel, and the second limit switch is installed below the driven wheel;
[0018] Both the first limit switch and the second limit switch are connected to the reduction motor;
[0019] A contact rod is fixed to the connecting rod. After the contact rod touches the first limit switch, the motor rotates forward. After the contact rod touches the second limit switch, the reduction motor rotates in reverse.
[0020] Compared with the prior art, the beneficial effects of this application are:
[0021] The disinfection device for a slaughterhouse workshop provided by this application is equipped with multiple ozone disinfection machines evenly distributed at equal intervals along the width direction of the slaughterhouse workshop. The ozone disinfection machines are installed at the top of the slaughterhouse workshop, and the air outlets of the ozone disinfection machines face downward. Additionally, each ozone disinfection machine is connected to a reciprocating movement mechanism that can drive it to reciprocate along the length direction of the slaughterhouse workshop. The reciprocating movement mechanism is installed at the top of the slaughterhouse workshop. When disinfecting the slaughterhouse workshop, all the reciprocating movement mechanisms and all the ozone disinfection machines are started simultaneously. Each reciprocating movement mechanism drives the ozone disinfection machine connected to it to slowly reciprocate along the length direction of the slaughterhouse workshop. While all the ozone disinfection machines are reciprocating, they evenly emit ozone downward. Moreover, the density of ozone is greater than that of air. Therefore, ozone can evenly descend and disperse from the top of the slaughterhouse workshop to the bottom, disinfecting the air inside the slaughterhouse workshop. Consequently, compared with the existing disinfection method for the air inside a slaughterhouse workshop, the ozone disinfection machines can evenly emit ozone downward while moving, improving the evenness of ozone dispersion inside the slaughterhouse workshop, solving the problem of poor disinfection effect at local positions in the slaughterhouse workshop, and enhancing the disinfection effect of the entire slaughterhouse workshop. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] In order to more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the drawings described below are some embodiments of this application. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.
[0023] Figure 1 It is the front view structural schematic diagram of the disinfection device for a slaughterhouse workshop provided by the embodiment of this application;
[0024] Figure 2 It is the partial top view structural schematic diagram of the disinfection device for a slaughterhouse workshop provided by the embodiment of this application;
[0025] Figure 3 It is the partial three-dimensional structural schematic diagram of the disinfection device for a slaughterhouse workshop provided by the embodiment of this application;
[0026] Figure 4 It is the partial front view sectional structural schematic diagram of the disinfection device for a slaughterhouse workshop provided by the embodiment of this application;
[0027] Figure 5 It is the top view structural schematic diagram of the annular plate of the disinfection device for a slaughterhouse workshop provided by the embodiment of this application.
[0028] Description of the reference numerals: ozone disinfection machine 1, air outlet 101;
[0029] Reciprocating mechanism 2, driving wheel 201, driven wheel 202, transmission rope 203, reduction motor 204, first mounting seat 205, second mounting seat 206, chain drive mechanism 207;
[0030] Mounting frame 3, annular plate 301, pressing plate 302, screw 303, through hole 304, nut 305, connecting piece 306, hoop 307, connecting rod 308, rubber pad 309;
[0031] Gas collecting hood 4, air distribution pipe 5, jet head 6, first limit switch 7, second limit switch 8, contact rod 9;
[0032] Slaughterhouse workshop 10. Detailed implementation manners
[0033] To make the objectives, technical solutions and advantages of the embodiments of this application clearer, the technical solutions in the embodiments of this application will be clearly and completely described below. Apparently, the described embodiments are some but not all of the embodiments of this application. All other embodiments obtained by those of ordinary skill in the art based on the embodiments in this application without creative efforts also belong to the scope of protection of this application.
[0034] As Figures 1-5 shown:
[0035] A disinfection device for a slaughterhouse workshop provided by an embodiment of this application includes an ozone disinfection machine 1. The number of the ozone disinfection machines 1 is multiple and they are evenly distributed at equal intervals along the width direction of the slaughterhouse workshop 10. Moreover, the ozone disinfection machines 1 are arranged at the top of the slaughterhouse workshop 10, and the air outlets 101 of the ozone disinfection machines 1 are distributed downward.
[0036] In this embodiment, the number of the ozone disinfection machines 1 is determined according to the actual width of the slaughterhouse workshop 10 and the actual area where the ozone disinfection machines 1 emit ozone.
[0037] Each of the ozone disinfection machines 1 is connected to a reciprocating mechanism 2 that can drive it to reciprocate along the length direction of the slaughterhouse workshop 10. The reciprocating mechanism 2 is installed at the top of the slaughterhouse workshop 10.
[0038] During use, all the reciprocating mechanisms 2 and all the ozone disinfection machines 1 are started simultaneously. Each reciprocating mechanism 2 drives the ozone disinfection machine 1 connected to it to slowly reciprocate along the length direction of the slaughterhouse workshop 10. While all the ozone disinfection machines 1 are reciprocating, they evenly emit ozone downward. Moreover, the density of ozone is greater than the density of air. Therefore, ozone can evenly descend and disperse from the top of the slaughterhouse workshop 10 to the bottom of the slaughterhouse workshop 10 to disinfect the air inside the slaughterhouse workshop 10.
[0039] The disinfection device for the slaughterhouse workshop provided in this embodiment is provided with a plurality of ozone disinfection machines 1 evenly distributed at equal intervals in the width direction of the slaughterhouse workshop 10. The ozone disinfection machines 1 are arranged at the top of the slaughterhouse workshop 10, and the air outlets 101 of the ozone disinfection machines 1 are distributed downward. Moreover, each ozone disinfection machine 1 is connected with a reciprocating movement mechanism 2 capable of driving it to reciprocate in the length direction of the slaughterhouse workshop 10. The reciprocating movement mechanism 2 is installed at the top of the slaughterhouse workshop 10, so that the ozone disinfection machine 1 can evenly emit ozone downward while moving in the length direction of the slaughterhouse workshop 10, thereby improving the uniformity of the dispersion of ozone in the slaughterhouse workshop 10, solving the problem of poor disinfection effect at local positions in the slaughterhouse workshop 10, and improving the disinfection effect of the entire slaughterhouse workshop 10.
[0040] In some embodiments of the present application, the reciprocating movement mechanism 2 includes a driving wheel 201 and a driven wheel 202. The driving wheel 201 is installed at one end of the slaughterhouse workshop 10, the driven wheel 202 is installed at the other end of the slaughterhouse workshop 10, and a transmission rope 203 with an annular structure is tensioned and wound between the driving wheel 201 and the driven wheel 202.
[0041] The transmission rope 203 is connected to the ozone disinfection machine 1 through a mounting bracket 3.
[0042] The driving wheel 201 is connected with a reduction motor 204 capable of intermittent forward and reverse rotation.
[0043] In this embodiment, a first mounting seat 205 is fixed at the right end of the slaughterhouse workshop 10, a second mounting seat 206 is fixed at the left end of the slaughterhouse workshop 10. The driving wheel 201 is rotatably installed on the first mounting seat 205 through a bearing, the driven wheel 202 is rotatably installed on the second mounting seat 206 through a bearing, the reduction motor 204 is fixed on the first mounting seat 205, and the output shaft of the reduction motor 204 is connected to the driving wheel 201 through a chain drive mechanism 207.
[0044] During use, the reduction motor 204 drives the driving wheel 201 to rotate slowly through the chain drive mechanism 207. The driving wheel 201 drives the transmission rope 203 to move slowly, and the transmission rope 203 drives the ozone disinfection machine 1 to move slowly through the mounting bracket 3. Among them, after the reduction motor 204 rotates forward, the ozone disinfection machine 1 moves from right to left. When the ozone disinfection machine 1 moves to the left end of the slaughterhouse workshop 10, the reduction motor 204 rotates in reverse, and the ozone disinfection machine 1 moves from left to right. When the ozone disinfection machine 1 moves to the right end of the slaughterhouse workshop 10, the reduction motor 204 rotates forward, and the ozone disinfection machine 1 moves from right to left, so as to realize the reciprocating movement of the ozone disinfection machine 1.
[0045] In some embodiments of the present application, the mounting bracket 3 includes an annular plate 301 and a pressing plate 302. Screws 303 are fixedly welded at the four corner positions of the pressing plate 302. Through holes 304 corresponding to the screws 303 one by one are formed on the annular plate 301. The end of each screw 303 penetrates through the corresponding through hole 304 and is engaged with a nut 305. The ozone disinfection machine 1 is tightly pressed between the annular plate 301 and the pressing plate 302, and the air outlet 101 of the ozone disinfection machine 1 is located in the hollow part of the annular plate 301. A connecting member 306 is fixed to the upper end of the pressing plate 302, and the connecting member 306 is fixedly connected to the transmission rope 203.
[0046] During use, first place the ozone disinfection machine 1 on the annular plate 301, and make the air outlet 101 of the ozone disinfection machine 1 located in the hollow part of the annular plate 301. Then place the pressing plate 302 on the upper end of the ozone disinfection machine 1, and insert each screw 303 into the corresponding through hole 304. Then engage each nut 305 with the corresponding screw 303 from the lower end of the annular plate 301. Finally, rotate the nut 305 to clamp the ozone disinfection machine 1 between the pressing plate 302 and the annular plate 301, so as to detachably fix the ozone disinfection machine 1 and facilitate the later disassembly of the ozone disinfection machine 1.
[0047] In order to facilitate the fixed connection between the connecting member 306 and the transmission rope 203. In some embodiments of the present application, the connecting member 306 includes a hoop 307, and a connecting rod 308 is fixed to the lower end of the hoop 307.
[0048] The hoop 307 is fixed on the transmission rope 203, and the connecting rod 308 is fixedly connected to the upper end of the pressing plate 302.
[0049] In some embodiments of the present application, a gas collecting hood 4 is hermetically welded to the lower end of the annular plate 301, and the hollow part of the annular plate 301 is located inside the gas collecting hood 4. The lower end of the gas collecting hood 4 is hermetically connected to a gas distribution pipe 5 distributed along the width direction of the slaughterhouse 10, and the end of the gas distribution pipe 5 extends to the side of the ozone disinfection machine 1. A plurality of evenly distributed jet nozzles 6 are connected to the lower end of the gas distribution pipe 5.
[0050] The outer wall of the ozone disinfection machine 1 is closely attached to the upper end of the annular plate 301.
[0051] In this embodiment, by providing the gas distribution pipe 5 distributed along the width direction of the slaughterhouse 10 and with its end extending to the side of the ozone disinfection machine 1, and a plurality of evenly distributed jet nozzles 6 fixed to the lower end of the gas distribution pipe 5, not only can the disinfection coverage area of each ozone disinfection machine 1 be increased, but also the uniformity of ozone emitted downward can be improved.
[0052] In this embodiment, the number of ozone disinfection machines 1 is determined according to the actual width of the slaughterhouse workshop 10 and the length of the air distribution pipe 5.
[0053] During use, the ozone generated by the ozone disinfection machine 1 first enters the air collecting hood 4 from its air outlet 101, then enters the air distribution pipe 5 from the air collecting hood 4, and finally is ejected downward from the jet head 6.
[0054] In some embodiments of the present application, rubber pads 309 adapted to each other are fixed to the upper end of the annular plate 301 and the lower end of the pressing plate 302, which can not only improve the fixing effect of the ozone disinfection machine 1, but also improve the sealing effect between the upper end of the annular plate 301 and the outer wall of the ozone disinfection machine 1, thereby avoiding the leakage of ozone between the upper end of the annular plate 301 and the outer wall of the ozone disinfection machine 1.
[0055] In some embodiments of the present application, a first limit switch 7 and a second limit switch 8 are further included. The first limit switch 7 is installed below the driving wheel 201, and the second limit switch 8 is installed below the driven wheel 202.
[0056] Both the first limit switch 7 and the second limit switch 8 are connected to the reduction motor 204.
[0057] A contact rod 9 is fixed on the connecting rod 308. After the contact rod 9 touches the first limit switch 7, the motor rotates forward. After the contact rod 9 touches the second limit switch 8, the reduction motor 204 rotates in reverse.
[0058] In this embodiment, both the first limit switch 7 and the second limit switch 8 adopt direct-acting travel switches. The connection circuit between the first limit switch 7 and the second limit switch 8 and the reduction motor 204 is prior art and will not be described in detail.
[0059] During use, when the contact rod 9 touches the first limit switch 7, the motor rotates forward, and the transmission rope 203 drives the ozone disinfection machine 1 to move from right to left. When the contact rod 9 touches the second limit switch 8, the motor rotates in reverse, and the transmission rope 203 drives the ozone disinfection machine 1 to move from left to right.
[0060] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present application, and are not intended to limit them; although the present application has been described in detail with reference to the foregoing embodiments, those of ordinary skill in the art should understand that they can still modify the technical solutions described in the foregoing embodiments, or perform equivalent replacements for some or all of the technical features; and these modifications or replacements do not make the essence of the corresponding technical solutions deviate from the scope of the technical solutions of the embodiments of the present application.
Claims
1. A slaughterhouse disinfection device, comprising an ozone disinfector (1), characterized in that: The ozone disinfectors (1) are multiple in number and are evenly distributed along the width direction of the slaughterhouse, and the ozone disinfectors (1) are arranged on the top of the slaughterhouse, with the air outlets (101) of the ozone disinfectors (1) facing downwards; Each of the ozone disinfectors (1) is connected to a reciprocating mechanism (2) capable of driving it to reciprocate along the length direction of the slaughterhouse, and the reciprocating mechanism (2) is installed on the top of the slaughterhouse.
2. The slaughterhouse disinfection device according to claim 1, characterized in that: The reciprocating mechanism (2) comprises a driving wheel (201) and a driven wheel (202), wherein the driving wheel (201) is installed at one end of the slaughterhouse, and the driven wheel (202) is installed at the other end of the slaughterhouse, and a transmission rope (203) of an annular structure is tensioned and wound between the driving wheel (201) and the driven wheel (202); The transmission rope (203) is connected to the ozone disinfector (1) via a mounting frame (3); The driving wheel (201) is connected to a reduction motor (204) capable of intermittent forward and reverse rotation.
3. The slaughterhouse disinfection device according to claim 2, characterized in that: The mounting frame (3) comprises an annular plate (301) and a pressing plate (302), screw rods (303) are fixed at the four corners of the pressing plate (302), through holes (304) corresponding to the screw rods (303) are opened on the annular plate (301), the end of each screw rod (303) passes through the corresponding through hole (304) and is meshed with a nut (305), the ozone disinfector (1) is tightly pressed between the annular plate (301) and the pressing plate (302), and the air outlet (101) of the ozone disinfector (1) is located in the hollow part of the annular plate (301); A connecting piece (306) is fixed to the upper end of the pressing plate (302), and the connecting piece (306) is fixedly connected to the transmission rope (203).
4. The slaughterhouse disinfection device according to claim 3, characterized in that: The connecting member (306) comprises a hoop (307), and a connecting rod (308) is fixed at the lower end of the hoop (307); The hoop (307) is fixed on the transmission rope (203), and the connecting rod (308) is fixedly connected to the upper end of the pressing plate (302).
5. The slaughterhouse disinfection device according to claim 3, characterized in that: The lower end of the annular plate (301) is sealedly connected to the gas collecting hood (4), and the hollow portion of the annular plate (301) is located inside the gas collecting hood (4). The lower end of the gas collecting hood (4) is sealedly connected to an air distribution pipe (5) distributed along the width direction of the slaughterhouse, and the end of the air distribution pipe (5) extends to the side of the ozone disinfector (1). The lower end of the air distribution pipe (5) is connected to a plurality of equidistantly distributed nozzles (6); The outer wall of the ozone disinfector (1) is in close contact with the upper end of the annular plate (301).
6. The slaughterhouse disinfection device according to claim 5, characterized in that: The upper end of the annular plate (301) and the lower end of the pressing plate (302) are both fixed with matching rubber pads (309).
7. The slaughterhouse disinfection device according to claim 4, characterized in that: It also includes a first limit switch (7) and a second limit switch (8), wherein the first limit switch (7) is installed below the driving wheel (201), and the second limit switch (8) is installed below the driven wheel (202); The first limit switch (7) and the second limit switch (8) are both connected to the reduction motor (204); A touch rod (9) is fixed on the connecting rod (308). When the touch rod (9) touches the first limit switch (7), the motor rotates forward. When the touch rod (9) touches the second limit switch (8), the reduction motor (204) rotates reversely.