Ultraviolet sterilization device for organic milk processing
By combining screening, crushing, and sterilization, the problem of poor sterilization effect and high energy consumption caused by clumping in organic milk powder processing is solved, achieving a highly efficient and energy-saving milk powder sterilization effect.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-10-31
- Publication Date
- 2026-03-24
AI Technical Summary
Existing organic milk powder processing equipment is prone to clumping when exposed to ultraviolet light, resulting in poor sterilization. Furthermore, existing screening and crushing structures are energy-intensive and difficult to achieve thorough crushing in one go.
A device was designed that includes screening, auxiliary crushing, sterilization, reflux and pushing sections. Through a combination of sieve plate vibration screening, rod collision crushing, ultraviolet lamp reciprocating motion and friction wheel scraping structure, the device can achieve efficient screening and sterilization of milk powder.
It improves sterilization efficiency, reduces energy consumption, ensures thorough pulverization and sterilization of milk powder, and achieves energy-saving goals.
Smart Images

Figure CN117413870B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of organic milk processing technology, and in particular to an ultraviolet sterilization device for organic milk processing. Background Technology
[0002] Organic milk is a dairy product produced according to organic standards and rigorously certified by a third party as "the healthiest and most natural." Organic milk emphasizes being "completely natural" and "pollution-free throughout the entire process." During the processing of organic milk powder, sterilization is required, necessitating the use of sterilization equipment. However, existing equipment sometimes produces clumps of milk powder when irradiating it with ultraviolet light, affecting the overall sterilization effect. Although existing equipment has screening and crushing structures, this significantly increases energy consumption. Furthermore, existing equipment struggles to achieve complete crushing in a single operation, leaving loopholes in subsequent sterilization processes. Summary of the Invention
[0003] In view of this, the present invention provides an ultraviolet sterilization device for organic milk processing, which solves the problem that when existing devices irradiate organic milk powder with ultraviolet light, the milk powder contains clumps, which affects the overall sterilization effect. Although existing devices have screening and crushing structures, this results in a significant increase in energy consumption. Furthermore, existing devices are difficult to achieve a one-time crushing state during crushing, which leads to the problem that there are still loopholes in the subsequent sterilization process.
[0004] The purpose and effectiveness of the ultraviolet sterilization device for organic milk processing of this invention are achieved by the following specific technical means:
[0005] This invention provides an ultraviolet sterilization device for organic milk processing, specifically comprising: a housing; a second housing welded to the top surface of the housing, the second housing being a cylindrical tubular structure, the second housing being connected to the housing, and a cover plate fastened to the top of the second housing, the cover plate being a stepped structure, and a feed pipe being provided on the cover plate.
[0006] Furthermore, a first screening part is installed on the cover plate. The first screening part consists of a first motor, a rotating shaft, a sieve plate, through holes, and a spring rod. The first motor is fixed on the cover plate. A rotating shaft is installed on the rotating shaft of the first motor. A sieve plate is welded on the rotating shaft. The sieve plate has a circular plate structure. The outer wall of the sieve plate is in contact with the inner wall of the second housing. Through holes for screening organic milk powder are opened in a ring array on the sieve plate. The through holes have a circular hole structure.
[0007] Furthermore, two spring rods are symmetrically welded on the inner wall of the second housing. The upper end of both spring rods has been polished. After polishing, the upper end of both spring rods is an arc-shaped structure, and the upper end of both spring rods is elastically engaged with the through hole.
[0008] Furthermore, an auxiliary part is installed inside the equipment housing. The auxiliary part consists of a first rod and a second rod. The first rod is a cylindrical rod structure welded in a linear array inside the equipment housing. The first rod is located below the second housing. The linear array of welded first rods together form the crushing structure of the blocky milk powder.
[0009] Furthermore, a second rod is welded in a linear array inside the device housing. The second rod is a cylindrical rod structure and is located below the first rod. The second rod and the first rod are arranged in an alternating manner, and together they form a double-breaking structure for the blocky milk powder.
[0010] Furthermore, a sterilization section is installed inside the equipment housing. The sterilization section consists of a first mounting block, electric cylinders, a base, ultraviolet lamps, friction wheels, friction seats, and scrapers. There are two first mounting blocks, both of which are rectangular block structures. The two first mounting blocks are fixed to the left and right end faces of the inner wall of the equipment housing, respectively. Two electric cylinders are fixed to the bottom face of each first mounting block. The lower ends of the two electric cylinders on the left are welded to one base, and the lower ends of the two electric cylinders on the right are welded to another base. There are two bases, both of which are concave structures. Four ultraviolet lamps are installed on each base in a linear array. Four scrapers are welded to each base, and the eight scrapers contact the outer walls of the eight ultraviolet lamps.
[0011] Furthermore, each of the ultraviolet lamps is attached with a friction wheel made of rubber; two friction seats are welded to the inner wall of the equipment housing. Both friction seats are structural, with the left friction seat in elastic contact with the four friction wheels on the left and the right friction seat in elastic contact with the four friction wheels on the right.
[0012] Furthermore, a collection seat is welded inside the device housing. The collection seat is located below the auxiliary part and the sterilization part. The collection seat has a converging structure, and a filter screen for filtering organic milk powder is provided in the middle part of the collection seat.
[0013] Furthermore, a reflux section is installed on the equipment housing. The reflux section consists of a centrifugal fan, an air inlet pipe, and an exhaust pipe. The centrifugal fan is fixed to the right end face of the equipment housing. An air inlet pipe and an exhaust pipe are connected to the centrifugal fan. The air inlet pipe is connected to the equipment housing and aligned with the recess of the collection seat. The exhaust pipe is connected to the cover plate and is connected to the second housing.
[0014] Furthermore, a pushing part is installed on the device housing. The pushing part consists of a sliding rod, a pushing block, a second motor, and a threaded rod. The sliding rod is welded inside the device housing and has a cylindrical rod-like structure. A pushing block is slidably connected to the sliding rod. The pushing block has a rectangular block-like structure, and the bottom end face of the pushing block contacts the recess of the collecting seat. A second motor is installed on the left end face of the device housing. A threaded rod is installed on the rotating shaft of the second motor and is threadedly connected to the pushing block.
[0015] Furthermore, a support portion is installed on the equipment housing. The support portion consists of a second mounting block, support legs, and support seats. There are two second mounting blocks, which are welded to the left and right end faces of the equipment housing, respectively. Both second mounting blocks are rectangular block structures. Two support legs are welded to the bottom end face of each second mounting block. All four support legs are cylindrical rod structures. A support seat is threaded to one end of each of the four support legs. All four support seats are in contact with the ground.
[0016] Furthermore, a control box is installed on the right end face of the device housing, and a microprocessor is installed inside the control box. The microprocessor is electrically connected to the electric cylinder.
[0017] Beneficial effects
[0018] The system includes a first screening section. This section serves two purposes: firstly, it filters out clumps of milk powder, preventing them from falling directly downwards and reducing the sterilization effect; secondly, the continuous vibration of the sieve plate during screening helps break up clumps of milk powder and clears blockages in the sieve's holes, eliminating the need for a separate crushing structure. This improves the subsequent sterilization effect while also saving energy.
[0019] The system includes an auxiliary section. This section serves two purposes: firstly, as the milk powder falls downwards, it is broken up again by colliding with the first and second rods, ensuring the subsequent sterilization effect; secondly, the staggered arrangement of the first and second rods improves the breaking effect of the milk powder pieces, making it highly practical.
[0020] The system includes a sterilization section. Firstly, the microprocessor controls the reciprocating extension and retraction of the electric cylinder to achieve reciprocating irradiation sterilization, improving the sterilization effect. Secondly, while the UV lamp reciprocates up and down for sterilization, the scraper automatically removes milk powder from the UV lamp under the drive of the friction wheel and friction seat, eliminating the need for a separate electric component and achieving energy savings.
[0021] It is equipped with a reflux section and a push section. The reflux section can return the lumpy milk powder that has been sifted out by the sieve, and the lumpy milk powder will be broken up again after reflux, ensuring the sterilization quality of the subsequent process. On the other hand, the push section can push the lumpy milk powder to the air inlet pipe on the reflux section, ensuring the quality of reflux and making it highly practical. Attached Figure Description
[0022] To more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings of the embodiments will be briefly described below.
[0023] The accompanying drawings described below are only related to some embodiments of the invention and are not intended to limit the invention.
[0024] In the attached diagram:
[0025] Figure 1 This is an axial view structural schematic diagram of the ultraviolet sterilization device for organic milk processing according to the present invention.
[0026] Figure 2 This is a schematic diagram of the main structure of the ultraviolet sterilization device for organic milk processing according to the present invention.
[0027] Figure 3 This is a partial cross-sectional axial view of the ultraviolet sterilization device for organic milk processing according to the present invention.
[0028] Figure 4 This is the present invention. Figure 3 A schematic diagram of the main structure.
[0029] Figure 5 This is the present invention. Figure 3 A schematic diagram of the axial view structure after further cross-section.
[0030] Figure 6 This is the present invention. Figure 5 A schematic diagram of the main structure.
[0031] Figure 7 This is the present invention. Figure 6 A magnified structural diagram at point A.
[0032] Figure 8 This is the present invention. Figure 6 A magnified structural diagram at point B.
[0033] Figure 9 This is an axial view of the sterilization part of the present invention.
[0034] Figure 10 This is an axial view schematic diagram of the collection seat and filter screen of the present invention.
[0035] List of reference numerals
[0036] 1. Equipment housing; 101. Second housing; 102. Cover plate; 103. Collection seat; 104. Filter screen; 2. First screening section; 201. First motor; 202. Rotating shaft; 203. Screen plate; 204. Through hole; 205. Spring rod; 3. Auxiliary section; 301. First rod body; 302. Second rod body; 4. Sterilization section; 401. First mounting block; 402. Electric cylinder; 403. Seat body; 404. Ultraviolet lamp; 405. Friction wheel; 406. Friction seat; 407. Scraper; 5. Return section; 501. Centrifugal fan; 502. Air inlet pipe; 503. Exhaust pipe; 6. Pushing section; 601. Sliding rod; 602. Pushing block; 603. Second motor; 604. Threaded rod; 7. Support section; 701. Second mounting block; 702. Support leg; 703. Support seat; 8. Control box. Detailed Implementation
[0037] To make the objectives, solutions, and advantages of the present invention clearer, the technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Unless otherwise stated, the terms used herein have their ordinary meanings in the art. The same reference numerals in the drawings represent the same parts.
[0038] Example 1:
[0039] Please refer to Figures 1 to 10 :
[0040] The present invention proposes an ultraviolet sterilization device for organic milk processing, comprising: a housing 1; a second housing 101 welded to the top surface of the housing 1, the second housing 101 being a cylindrical tubular structure, the second housing 101 being connected to the housing 1, and a cover plate 102 fastened to the top of the second housing 101, the cover plate 102 being a stepped structure, and a feed pipe being provided on the cover plate 102.
[0041] The cover plate 102 is equipped with a first screening part 2, which consists of a first motor 201, a rotating shaft 202, a sieve plate 203, a through hole 204 and a spring rod 205. The first motor 201 is fixed on the cover plate 102. A rotating shaft 202 is installed on the rotating shaft of the first motor 201. A sieve plate 203 is welded on the rotating shaft 202. The sieve plate 203 is a circular plate structure. The outer wall of the sieve plate 203 is in contact with the inner wall of the second housing 101. Through holes 204 for screening organic milk powder are opened in a ring array on the sieve plate 203. The through holes 204 are circular holes.
[0042] Two spring rods 205 are symmetrically welded to the inner wall of the second housing 101. The upper ends of both spring rods 205 are polished, resulting in an arc-shaped structure. The upper ends of both spring rods 205 are elastically engaged with through holes 204. In use, milk powder can be screened through the through holes 204 on the sieve plate 203. Then, the first motor 201 is controlled to rotate. When the first motor 201 rotates, it drives the sieve plate 203 to rotate. The continuous elastic engagement of the spring rods 205 with the through holes 204 causes the sieve plate 203 to vibrate. This continuous vibration of the sieve plate 203 breaks up lumpy milk powder and prevents blockage of the through holes 204.
[0043] The auxiliary part 3 is installed inside the equipment housing 1. The auxiliary part 3 is composed of a first rod 301 and a second rod 302. The first rod 301 is a cylindrical rod structure welded in a linear array inside the equipment housing 1. The first rod 301 is located below the second housing 101. The linear array of welded first rods 301 together form the crushing structure of the block milk powder.
[0044] The equipment housing 1 has a second rod 302 welded in a linear array. The second rod 302 is a cylindrical rod structure and is located below the first rod 301. The second rod 302 and the first rod 301 are arranged in an alternating manner. The second rod 302 and the first rod 301 together form a double crushing structure for the blocky milk powder. After being screened, the milk powder falls downwards and will collide with the first rod 301 and the second rod 302 in sequence, thereby achieving further crushing of small milk powder blocks through the impact.
[0045] The equipment housing 1 houses a sterilization section 4, which comprises a first mounting block 401, an electric cylinder 402, a base 403, an ultraviolet lamp 404, a friction wheel 405, a friction seat 406, and a scraper 407. Two first mounting blocks 401 are provided, each a rectangular block structure. The two first mounting blocks 401 are respectively fixed to the left and right end faces of the inner wall of the equipment housing 1. Each first mounting block 401 has a fixed bottom surface... Two electric cylinders 402 are provided. The lower ends of the two electric cylinders 402 on the left are welded to a base 403, and the lower ends of the two electric cylinders 402 on the right are welded to another base 403. There are two bases 403 in total. Both bases 403 are concave structures. Four ultraviolet lamps 404 are installed on each base 403 in a linear array. Four scrapers 407 are welded on each base 403. The eight scrapers 407 contact the outer walls of the eight ultraviolet lamps 404 respectively.
[0046] Each ultraviolet lamp 404 is equipped with a friction wheel 405 made of rubber. Two friction seats 406 are welded to the inner wall of the equipment housing 1. Both friction seats 406 are structural components; the left friction seat 406 elastically contacts the four friction wheels 405 on the left, and the right friction seat 406 elastically contacts the four friction wheels 405 on the right. After being crushed, the milk powder falls downwards and is sterilized by the ultraviolet lamps 404. Simultaneously, the microprocessor-controlled electric cylinder 402 reciprocates, driving the ultraviolet lamps 404 to move up and down, thus improving the irradiation and sterilization effect of the milk powder. During the reciprocating motion of the ultraviolet lamps 404, the friction between the friction wheels 405 and the friction seats 406 enables the reciprocating rotation of all eight ultraviolet lamps 404. As the eight ultraviolet lamps 404 rotate, a scraper 407 automatically removes the milk powder from the ultraviolet lamps 404.
[0047] The equipment housing 1 has a collection seat 103 welded inside. The collection seat 103 is located below the auxiliary part 3 and the sterilization part 4. The collection seat 103 has a convergent structure, and a filter screen 104 for filtering organic milk powder is provided in the middle part of the collection seat 103.
[0048] The equipment housing 1 is equipped with a return section 5, which consists of a centrifugal fan 501, an air inlet pipe 502, and an exhaust pipe 503. The centrifugal fan 501 is fixed to the right end face of the equipment housing 1. An air inlet pipe 502 and an exhaust pipe 503 are connected to the centrifugal fan 501. The air inlet pipe 502 is connected to the equipment housing 1 and is aligned with the recess of the collection seat 103. The exhaust pipe 503 is connected to the cover plate 102 and is connected to the second housing 101.
[0049] The device housing 1 is equipped with a pushing part 6, which consists of a sliding rod 601, a pushing block 602, a second motor 603, and a threaded rod 604. The sliding rod 601 is welded inside the device housing 1 and is a cylindrical rod structure. A pushing block 602 is slidably connected to the sliding rod 601. The pushing block 602 is a rectangular block structure, and its bottom end contacts the recess of the collection seat 103. A second motor 603 is installed on the left end face of the device housing 1. A threaded rod 604 is installed on the rotating shaft of the second motor 603 and is threadedly connected to the pushing block 602. After sterilization, the milk powder continues to fall downwards and lands on the collection seat 103. Then, the milk powder is filtered through the filter screen 104 on the collection seat 103. After filtration, small lumps of milk powder remain on the filter screen 104. At this time, the centrifugal fan 501 is controlled to rotate. When the centrifugal fan 501 rotates, it can absorb the small lumps of milk powder on the filter screen 104 and then transport them to the sieve plate 203 for secondary processing. When the lumps of milk powder near the left side cannot be absorbed, the second motor 603 is controlled to rotate. When the second motor 603 rotates, it can drive the threaded rod 604 to rotate. Driven by the threaded rod 604, the block 602 is pushed to the right. At this time, by pushing the block 602, the small lumps of milk powder can be pushed to the air inlet pipe 502 for subsequent absorption by the air inlet pipe 502.
[0050] Example 2:
[0051] Based on Example 1, such as Figure 5 As shown, it also includes: a control box 8. A control box 8 is installed on the right end face of the equipment housing 1. A microprocessor is installed inside the control box 8. The microprocessor is electrically connected to the electric cylinder 402. During use, the microprocessor can control the electric cylinder 402 to reciprocate and extend to achieve reciprocating sterilization.
[0052] Example 3:
[0053] Based on Example 2, such as Figure 5 As shown, it also includes: a support part 7, which is installed on the equipment housing 1. The support part 7 consists of a second mounting block 701, support legs 702, and support base 703. There are two second mounting blocks 701, which are welded to the left and right end faces of the equipment housing 1, respectively. Both second mounting blocks 701 are rectangular block structures. Two support legs 702 are welded to the bottom face of each second mounting block 701. The four support legs 702 are cylindrical rod structures. A support base 703 is threaded to one end of each of the four support legs 702. All four support bases 703 are in contact with the ground. When it is necessary to achieve horizontal support for the equipment housing 1, the support base 703 can be rotated directly.
[0054] The specific usage and function of this embodiment are as follows:
[0055] In use, organic milk powder is first added into the second housing 101 through the feed pipe. The milk powder is then screened through the through-holes 204 on the sieve plate 203. Next, the first motor 201 is controlled to rotate. When the first motor 201 rotates, it drives the sieve plate 203 to rotate. As the sieve plate 203 rotates, the continuous elastic engagement of the spring rod 205 with the through-holes 204 causes the sieve plate 203 to vibrate. This continuous vibration of the sieve plate 203 breaks up lumpy milk powder and prevents blockage of the through-holes 204. After screening, the milk powder is then... As the milk powder falls downwards, it impacts the first rod 301 and the second rod 302 in sequence, further breaking down small milk powder clumps. The broken milk powder then falls downwards, where it is sterilized by irradiation from the ultraviolet lamp 404. Simultaneously, the microprocessor-controlled electric cylinder 402 reciprocates, causing the ultraviolet lamp 404 to move up and down, thus enhancing the irradiation and sterilization effect of the milk powder. Meanwhile, the reciprocating motion of the ultraviolet lamp 404... During the process, the eight ultraviolet lamps 404 reciprocate through the friction transmission between the friction wheel 405 and the friction seat 406. As the eight ultraviolet lamps 404 reciprocate, the scraper 407 automatically scrapes off the milk powder from the ultraviolet lamps 404. The sterilized milk powder continues to fall downwards and lands on the collection seat 103, where it is filtered by the filter screen 104. Small clumps of milk powder remain on the filter screen 104 after filtration. At this point, the centrifugal fan 501 is activated. When the centrifugal fan 501 rotates, it can absorb the small lumps of milk powder on the filter screen 104 and then transport them to the sieve plate 203 for secondary processing. When the lumps of milk powder near the left side cannot be absorbed, the second motor 603 is controlled to rotate. When the second motor 603 rotates, it can drive the threaded rod 604 to rotate. Under the drive of the threaded rod 604, the block 602 is pushed to the right. At this time, by pushing the block 602, the small lumps of milk powder can be pushed to the air inlet pipe 502 position, which is convenient for subsequent absorption by the air inlet pipe 502.
Claims
1. An ultraviolet sterilization device for organic milk processing, comprising: Equipment housing (1); A second housing (101) is welded to the top surface of the equipment housing (1). The second housing (101) is a cylindrical tubular structure and is connected to the equipment housing (1). A cover plate (102) is fastened to the top of the second housing (101). The cover plate (102) is a stepped structure and has a feed pipe. The first screening part (2) is installed on the cover plate (102). The first screening part (2) is composed of a first motor (201), a rotating shaft (202), a sieve plate (203), a through hole (204), and a spring rod (205). The first motor (201) is fixed on the cover plate (102). A rotating shaft (202) is installed on the rotating shaft. A sieve plate (203) is welded on the rotating shaft (202). The sieve plate (203) is a circular plate structure. The outer wall of the sieve plate (203) is in contact with the inner wall of the second housing (101). The sieve plate (203) has through holes (204) for screening organic milk powder in a ring array. The through holes (204) are circular holes. Two spring rods (205) are symmetrically welded on the inner wall of the second housing (101). The upper end of the two spring rods (205) has been polished. After polishing, the upper end of the two spring rods (205) is an arc structure. The upper end of the two spring rods (205) is elastically engaged with the through holes (204). The equipment housing (1) is equipped with a sterilization section (4). The sterilization section (4) consists of a first mounting block (401), an electric cylinder (402), a seat (403), an ultraviolet lamp (404), a friction wheel (405), a friction seat (406), and a scraper (407). There are two first mounting blocks (401). Both first mounting blocks (401) are rectangular block structures. The two first mounting blocks (401) are fixed to the left end face and the right end face of the inner wall of the equipment housing (1), respectively. The bottom end face of each first mounting block (401) is fixed with a... Two electric cylinders (402) are provided. The lower ends of the two electric cylinders (402) on the left are welded to a base (403), and the lower ends of the two electric cylinders (402) on the right are welded to another base (403). There are two bases (403), both of which are concave structures. Four ultraviolet lamps (404) are installed on each base (403) in a linear array. Four scrapers (407) are welded on each base (403), and the eight scrapers (407) contact the outer wall of the eight ultraviolet lamps (404) respectively. Each ultraviolet lamp (404) is attached with a friction wheel (405), which is made of rubber. Two friction seats (406) are welded on the inner wall of the equipment housing (1). Both friction seats (406) are structural. The friction seat (406) on the left side is in elastic contact with the four friction wheels (405) on the left side, and the friction seat (406) on the right side is in elastic contact with the four friction wheels (405) on the right side.
2. The ultraviolet sterilization device for organic milk processing as described in claim 1, characterized in that: An auxiliary part (3) is installed inside the equipment housing (1). The auxiliary part (3) consists of a first rod (301) and a second rod (302). The first rod (301) is a cylindrical rod structure welded in a linear array inside the equipment housing (1). The first rod (301) is located below the second housing (101). The first rod (301) welded in a linear array together form the broken structure of the block milk powder.
3. The ultraviolet sterilization device for organic milk processing as described in claim 1, characterized in that: The device housing (1) has a second rod (302) welded in a linear array inside. The second rod (302) is a cylindrical rod structure. The second rod (302) is located below the first rod (301). The second rod (302) and the first rod (301) are arranged in an alternating manner. The second rod (302) and the first rod (301) together form a double crushing structure for the blocky milk powder.
4. The ultraviolet sterilization device for organic milk processing as described in claim 1, characterized in that: A collection seat (103) is welded inside the housing (1) of the device. The collection seat (103) is located below the auxiliary part (3) and the sterilization part (4). The collection seat (103) has a convergent structure. A filter screen (104) for filtering organic milk powder is provided in the middle part of the collection seat (103).
5. The ultraviolet sterilization device for organic milk processing as described in claim 1, characterized in that: The equipment housing (1) is equipped with a return section (5), which consists of a centrifugal fan (501), an air inlet pipe (502) and an exhaust pipe (503). The centrifugal fan (501) is fixed on the right end face of the equipment housing (1). An air inlet pipe (502) and an exhaust pipe (503) are connected to the centrifugal fan (501). The air inlet pipe (502) is connected to the equipment housing (1). The air inlet pipe (502) is aligned with the recess of the collection seat (103). The exhaust pipe (503) is connected to the cover plate (102) and is connected to the second housing (101).
6. The ultraviolet sterilization device for organic milk processing as described in claim 1, characterized in that: The device housing (1) is equipped with a pushing part (6), which consists of a sliding rod (601), a pushing block (602), a second motor (603), and a threaded rod (604). The sliding rod (601) is welded inside the device housing (1). The sliding rod (601) is a cylindrical rod structure. A pushing block (602) is slidably connected to the sliding rod (601). The pushing block (602) is a rectangular block structure. The bottom end face of the pushing block (602) contacts the recess of the collecting seat (103). A second motor (603) is installed on the left end face of the device housing (1). A threaded rod (604) is installed on the rotating shaft of the second motor (603). The threaded rod (604) is threadedly connected to the pushing block (602).
7. The ultraviolet sterilization device for organic milk processing as described in claim 1, characterized in that: The equipment housing (1) is equipped with a support part (7). The support part (7) consists of a second mounting block (701), support legs (702) and support base (703). There are two second mounting blocks (701). The two second mounting blocks (701) are welded to the left end face and the right end face of the equipment housing (1) respectively. Both second mounting blocks (701) are rectangular block structures. Two support legs (702) are welded to the bottom end face of each second mounting block (701). The four support legs (702) are cylindrical rod structures. A support base (703) is threaded to one end of each of the four support legs (702). All four support bases (703) are in contact with the ground.
8. The ultraviolet sterilization device for organic milk processing as described in claim 1, characterized in that: A control box (8) is installed on the right end face of the equipment housing (1). A microprocessor is installed inside the control box (8), and the microprocessor is electrically connected to the electric cylinder (402).
Citation Information
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