Quick-freezing process monitoring equipment and method

By designing structures such as the combing quick-freezing component and the screening cylinder, the problem of insufficient adaptability of existing equipment when processing fruits and vegetables of different sizes has been solved, realizing uniform quick-freezing and rapid freshness locking of materials, and improving quick-freezing efficiency and effect.

CN121869698APending Publication Date: 2026-04-17GUANGDONG YOUQI TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
GUANGDONG YOUQI TECH CO LTD
Filing Date
2023-12-14
Publication Date
2026-04-17

AI Technical Summary

Technical Problem

Existing quick-freezing equipment has low adaptability when processing fruits and vegetables of different sizes, resulting in incomplete quick-freezing and difficulty in achieving uniform quick-freezing.

Method used

A quick-freezing process monitoring device was designed, including a combing quick-freezing component, a screening cylinder, a quick-freezing box, and a vibrating motor. The material flow rate and size are adjusted by screening, vibrating, and shaking to achieve simultaneous screening and quick-freezing of materials.

Benefits of technology

It improves the efficiency and effectiveness of quick-freezing fruits and vegetables of different sizes, ensures uniform quick-freezing of materials, avoids the problem of incomplete quick-freezing caused by accumulation, and achieves rapid freshness preservation of materials.

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Abstract

The invention discloses a quick-freezing process monitoring device and method, and particularly relates to the technical field of food quick-freezing, the quick-freezing process monitoring device comprises a base used for supporting, a carding quick-freezing assembly is arranged at the top of the base, and the carding quick-freezing assembly comprises a sliding frame arranged at the top of the base and used for supporting; the top of the sliding frame is provided with a material screening barrel used for screening materials. Impurities on materials are screened out, meanwhile, the materials with the uniform size can be gathered together, and the opening size of a discharging plate is adjusted, so that the flow of the materials discharged from the material screening barrel is adjusted, and the situation that due to the fact that the flow of the discharged materials is too large, quick freezing is not comprehensive is avoided; according to the quick-freezing device, quick-freezing, screening and conveying of materials are conducted synchronously, the transverse frame shakes to drive all structures on the second spring plate, the quick-freezing box and the partition box to shake, the materials quick-frozen by the quick-freezing device in the quick-freezing box are shaken, the materials are quick-frozen and fresh, and the quick-freezing efficiency and effect are improved.
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Description

Technical Field

[0001] This invention relates to the field of food quick-freezing technology, and more specifically, to a quick-freezing process monitoring device and method. Background Technology

[0002] Quick-freezing process monitoring equipment is used to monitor and control the quick-freezing process of food to ensure the quality and safety of the frozen food. This equipment is commonly used in food processing plants, cold storage facilities, and other similar locations. It allows for real-time monitoring and adjustment of factors such as temperature, time, and speed during the quick-freezing process to ensure the consistency and stability of the food's quick-freezing effect.

[0003] Quick-freezing is a technology that preserves the nutrients, texture, and flavor of food by rapidly lowering its temperature. The quick-freezing process inhibits the growth of microorganisms in food and slows down oxidation, thereby extending the food's shelf life.

[0004] Among them, a search revealed that patent application number CN202022595955.X discloses a quick-freezing and storage mechanism for diced fruits and vegetables, which relates to the field of fruit and vegetable processing technology. It includes a base, a support, a conveyor wheel, a rotating motor and a conveyor belt. A transverse baffle and a longitudinal baffle are fixedly connected on the conveyor belt. A transverse opening and a longitudinal opening are alternately arranged on the conveyor belt. A transverse cutting device and a longitudinal cutting device are respectively arranged below the transverse opening and the longitudinal opening. A transfer device is provided below one side of the conveyor belt. A feed inlet is provided on one side of the transfer device. A quick-freezing device is provided below the feed inlet.

[0005] When in use, this structure uses transverse and longitudinal cutting devices to cut fruits and vegetables placed on the conveyor belt from multiple directions into uniformly sized pieces. This ensures that the fruits and vegetables are frozen evenly and quickly during the subsequent quick-freezing process, guaranteeing a consistent freezing effect. However, this structure is only suitable for certain larger fruits and vegetables, and it only enables the quick-freezing of those. It is not easy to sort and quick-freeze fruits and vegetables of different sizes, such as lychees, resulting in low adaptability in its use. Summary of the Invention

[0006] In order to overcome the above-mentioned defects of the prior art, the present invention provides a quick-freezing process monitoring device and method, which aims to solve the problems mentioned in the background art.

[0007] To achieve the above objectives, the present invention provides the following technical solution: a quick-freezing process monitoring device, including a base for support, wherein a combing quick-freezing component is provided on the top of the base;

[0008] The combing quick-freezing assembly includes a slide frame for support on the top of the base, a sieve cylinder for screening materials on the top of the slide frame, and a combing box for guiding materials on the top of the sieve cylinder.

[0009] Both sides of the screening cylinder are equipped with quick-freezing boxes for storing materials, and each quick-freezing box is equipped with a partition box. The top of the partition box is equipped with two quick-freezing devices for quick-freezing the materials.

[0010] As can be seen, in the above technical solution, the material is introduced into the combing box through the feeding plate, the combing box first guides the material and the screen cylinder vibrates the screen, and the material is discharged through the two feeding plates and introduced into the corresponding partition box for quick freezing by the quick freezing device.

[0011] The slide has two support brackets on both sides. Several first vibration motors are mounted on the top of the slide, and each of the first vibration motors has a first spring plate mounted on the sieve cylinder. A connecting seat is located on one side of the base, and a hydraulic rod is movably connected to the connecting seat via a pin. The output end of the hydraulic rod extends to the support bracket and is movably connected to the support bracket via a pin. The slide is slidably connected to the base. The top of the combing box has a feed inlet for guiding material. The bottom of the sieve cylinder has two angle-adjustable discharge plates, and the top of each discharge plate has an electric push rod mounted on the sieve cylinder. The output end of each quick-freezing box extends to the corresponding discharge plate and is movably connected to the discharge plate. The bottom of the quick-freezing box has a second spring plate, and several second vibration motors are mounted on the bottom of the second spring plate. One end of the discharge plate has a baffle for blocking.

[0012] As can be seen, in the above technical solution, the feeding plate can be rotated by an electric push rod, and the opening size of the feeding plate can be adjusted to regulate the flow rate of the material discharged from the screening cylinder, so as to avoid the material discharge flow rate being too large and causing incomplete quick-freezing. The second vibration motor and the second spring plate vibrate the quick-freezing box and the partition box to prevent the material from piling up and causing incomplete quick-freezing. At the same time, it can make materials of different sizes discharged from the quick-freezing box through the same amplitude and introduced into the screening cylinder for screening again. The hydraulic rod output end is repeatedly retracted and extended, thereby driving the various structures on the slide to shake on the base, thereby improving the efficiency of the device in screening and quick-freezing.

[0013] The bottom of the second spring plate is provided with a reinforcing frame mounted on the bracket. Two cross frames are slidably connected to the reinforcing frame. A motor is provided on the reinforcing frame. The output end of the motor is provided with a positive and negative lead screw. Two first traction plates are threadedly connected to the positive and negative lead screw. Each first traction plate is movably connected to a second traction plate mounted on a corresponding cross frame. A screening cylinder located at the top of the bracket is provided on one side of the partition box. A first feeding hopper for guiding material is provided at the bottom of the screening cylinder. A docking plate mounted on the base is provided on one side of the first feeding hopper. A second feeding hopper for filtering is provided on the docking plate. A feeding pipe for guiding flow is provided at the bottom of the second feeding hopper. A protective cover is provided on the top of the docking plate. A transfer hopper is provided between the docking plate and the screening cylinder on the side of the protective cover facing the screening cylinder.

[0014] As can be seen, in the above technical solution, when the material is screened on the screening cylinder, the material of different sizes can be introduced into the first feeding hopper or into the top of the docking plate through the transfer hopper by rotating the screening cylinder. After being screened by the second feeding hopper, it is discharged by the feeding pipe, realizing the simultaneous freezing, screening and conveying of the material. The motor drives the positive and negative screws to rotate, so that each of the first traction plates and the second traction plates can be displaced in opposite directions by the traction force when the positive and negative screws rotate. This causes the cross frame to sway, which drives the second spring plate, the quick-freezing box and the partition box to sway. This shakes the material in the quick-freezing box that is being quick-frozen by the quick-freezing device, and the material is quickly frozen and locked in freshness, improving the quick-freezing efficiency and effect.

[0015] Furthermore, the present invention also provides a method of use, using the above-mentioned quick-freezing process monitoring equipment, the method comprising the following steps:

[0016] Step 1: When using the device, the staff will install it in the designated location. When the material is being quick-frozen, the material will be fed into the combing box through the feeding plate. The combing box will first guide the material to prevent it from piling up due to friction. After being guided by the combing box, the material will be fed into the screening cylinder for vibrating screening to remove impurities from the material and also allow materials of relatively uniform size to be gathered together.

[0017] Step 2: After the materials are gathered together, they can be discharged through two discharge plates and introduced into the corresponding baffle boxes for quick freezing by the quick-freezing device. When the materials are discharged through the discharge plates, the discharge plates can be rotated by an electric push rod to adjust the opening size of the discharge plates, thereby adjusting the flow rate of the materials discharged from the screen cylinder and avoiding excessive flow rate of materials that would result in incomplete quick freezing.

[0018] Step 3: When the material is quick-frozen, the second vibrating motor and the second spring plate vibrate the quick-freezing box and the partition box to prevent the material from piling up and causing incomplete quick-freezing. At the same time, it can make materials of different sizes pass through the same amplitude and be discharged from the quick-freezing box and introduced onto the screening cylinder for screening again.

[0019] Step four: When the material is screened on the screening cylinder, the rotation of the screening cylinder allows materials of different sizes to be fed into the first feeding hopper or into the top of the docking plate through the transfer hopper. After being screened by the second feeding hopper, the material is discharged through the feeding pipe, thus realizing the simultaneous freezing, screening and conveying of the material.

[0020] Step 5: When the device is in use, the output end of the hydraulic rod is repeatedly retracted and extended, thereby causing the various structures on the carriage to shake on the base, thereby improving the efficiency of the device in screening and quick-freezing.

[0021] Step six involves rotating the forward and reverse lead screws via a motor, causing the first and second traction plates to shift in opposite directions due to the traction force during the rotation of the lead screws. This causes the cross frame to sway, which in turn causes the second spring plate, the quick-freezing box, and the partition box to sway. This sways the material being quick-frozen by the quick-freezing device inside the quick-freezing box, and also enables the material to be quickly frozen and preserved, thus improving the efficiency and effectiveness of quick-freezing.

[0022] The technical effects and advantages of this invention are as follows:

[0023] 1. The present invention introduces the material into the combing box through the feeding plate. The combing box first guides the material to avoid the material from accumulating together due to friction. After the material is guided by the combing box, it is introduced into the screen cylinder for vibrating screening to screen out impurities on the material. At the same time, it also allows materials of relatively uniform size to be gathered together.

[0024] 2. In this invention, the material is discharged through two feeding plates and introduced into the corresponding baffle box for quick freezing by the quick-freezing device. When the material is discharged through the feeding plates, the feeding plates can be rotated by an electric push rod to adjust the opening size of the feeding plates, thereby adjusting the flow rate of the material discharged from the screen cylinder and avoiding excessive material flow rate, which would result in incomplete quick freezing.

[0025] 3. The present invention uses a second vibrating motor and a second spring plate to vibrate and screen the quick-freezing box and the partition box, so as to avoid the material from piling up together and causing incomplete quick-freezing. At the same time, it can make materials of different sizes pass through the same amplitude and be discharged from the quick-freezing box and introduced into the screening cylinder for screening again. With the rotation of the screening cylinder, materials of different sizes can be introduced into the first feeding hopper or introduced into the top of the docking plate through the transfer hopper. After being screened by the second feeding hopper, they are discharged through the feeding pipe, realizing the simultaneous quick-freezing, screening and conveying of materials.

[0026] 4. This invention uses the repeated retraction and extension of the output end of the hydraulic rod to drive the various structures on the slide to shake on the base. The shaking of the various structures on the slide causes the second spring plate, the quick-freezing box and the partition box to shake, thereby shaking the materials in the quick-freezing box that are being quick-frozen by the quick-freezing device, and quickly freezing and locking in freshness of the materials, thus improving the efficiency and effect of quick-freezing.

[0027] In summary, the overall design is simple and the structure is reasonable. Through the corresponding cooperation of various structures, impurities on the materials are screened out, while materials of relatively uniform size can be gathered together. The opening size of the feed plate is adjusted to regulate the flow rate of materials discharged from the screening cylinder, avoiding excessive flow rate that could lead to incomplete quick-freezing. This achieves simultaneous quick-freezing, screening, and conveying of materials. The swaying of the cross frame causes the second spring plate, quick-freezing box, and partition box to sway, shaking the materials being quick-frozen by the quick-freezing device in the quick-freezing box, and rapidly freezing and locking in freshness, thus improving quick-freezing efficiency and effect. Attached Figure Description

[0028] To more clearly illustrate the technical solutions in this disclosure, the accompanying drawings used in some embodiments of this disclosure will be briefly described below. Obviously, the drawings described below are only drawings of some embodiments of this disclosure, and those skilled in the art can obtain other drawings based on these drawings. In addition, the drawings described below can be regarded as schematic diagrams and are not intended to limit the actual size of the product, the actual flow of the method, the actual timing of the signals, etc. involved in the embodiments of this disclosure.

[0029] Figure 1 This is a schematic diagram of the overall structure of the present invention.

[0030] Figure 2 This is a side view of the overall structure of the present invention.

[0031] Figure 3 This is a front view of the combing and quick-freezing assembly of the present invention.

[0032] Figure 4 This is a front view of the various structures on the sieve cylinder of the present invention.

[0033] Figure 5 This is a front view of the various structures on the quick-freezing box of the present invention.

[0034] Figure 6 This is a front view of the protective cover and transfer bucket of the present invention.

[0035] Figure 7 This is a front view of the docking plate and screening cylinder of the present invention.

[0036] Figure 8 This is a front view of the carriage and bracket of the present invention.

[0037] Figure 9 This is a front view of the reinforcing frame and crossbar of the present invention.

[0038] The attached figures are labeled as follows: 1. Base; 101. Slide; 102. Bracket; 103. First vibration motor; 104. First spring plate; 105. Connecting seat; 106. Hydraulic rod;

[0039] 2. Screening cylinder; 201. Combing box; 202. Feed inlet; 203. Feeding plate; 204. Electric push rod; 205. Quick-freezing box; 206. Divider box; 207. Quick-freezing device; 208. Second spring plate; 209. Second vibration motor; 210. Stop bar;

[0040] 3. Reinforcing frame; 301. Horizontal frame; 302. Motor; 303. Positive and negative lead screws; 304. First traction plate; 305. Second traction plate; 306. Screening cylinder; 307. First feeding hopper; 308. Connecting plate; 309. Second feeding hopper; 310. Feeding pipe; 311. Protective cover; 312. Transfer hopper. Detailed Implementation

[0041] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0042] The terms "first," "second," and "third" used in the embodiments of this application are for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. Thus, a feature defined as "first," "second," or "third" may explicitly or implicitly include at least one of that feature. In the description of this application, "multiple" means at least two, such as two, three, etc., unless otherwise explicitly specified. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover non-exclusive inclusion. For example, a process, method, system, product, or device that includes a series of steps or units is not limited to the listed steps or units, but may optionally include steps or units not listed, or may optionally include other steps or units inherent to these processes, methods, products, or devices.

[0043] In this document, the term "embodiment" means that a particular feature, structure, or characteristic described in connection with an embodiment may be included in at least one embodiment of this application. The appearance of this phrase in various places throughout the specification does not necessarily refer to the same embodiment, nor is it a mutually exclusive, independent, or alternative embodiment. It will be explicitly and implicitly understood by those skilled in the art that the embodiments described herein can be combined with other embodiments.

[0044] As attached Figure 1-9 The quick-freezing process monitoring equipment and method shown uses a quick-freezing component set on the base 1 to screen out impurities from the material and allow materials of relatively uniform size to gather together. The opening size of the feed plate 203 is adjusted to regulate the flow rate of the material discharged from the screen cylinder 2, avoiding excessive flow rate that could lead to incomplete quick-freezing. This achieves simultaneous quick-freezing, screening, and conveying of the material. The swaying of the cross frame 301 causes the various structures on the second spring plate 208, quick-freezing box 205, and partition box 206 to sway, shaking the material being quick-frozen by the quick-freezing device 207 in the quick-freezing box 205, and rapidly freezing and locking in freshness, thereby improving quick-freezing efficiency and effect. The specific structural settings of the components are as follows.

[0045] The combing quick-freezing assembly includes a slide 101 set on top of the base 1 for support, a sieve cylinder 2 for screening materials set on top of the slide 101, and a combing box 201 for guiding materials set on top of the sieve cylinder 2.

[0046] Both sides of the screening cylinder 2 are equipped with quick-freezing boxes 205 for storing materials, and each quick-freezing box 205 is equipped with a partition box 206. The top of the partition box 206 is equipped with two quick-freezing devices 207 for quick-freezing materials.

[0047] Two support brackets 102 are provided on both sides of the slide 101. Several first vibration motors 103 are provided on the top of the slide 101. Each of the first vibration motors 103 is provided with a first spring plate 104 mounted on the screen cylinder 2. A connecting seat 105 is provided on one side of the base 1. A hydraulic rod 106 is movably connected to the connecting seat 105 by a shaft pin. The output end of the hydraulic rod 106 extends to the support bracket 102 and is movably connected to the support bracket 102 by a shaft pin. The slide 101 is slidably connected to the base 1. The top of the combing box 201... The screen cylinder 2 is equipped with a feed inlet 202 for guiding materials. The bottom of the screen cylinder 2 is equipped with two adjustable discharge plates 203. Each discharge plate 203 is equipped with an electric push rod 204 mounted on the screen cylinder 2. The output end of each quick-freezing box 205 extends to the corresponding discharge plate 203 and is movably connected to the discharge plate 203. The bottom of the quick-freezing box 205 is equipped with a second spring plate 208. The bottom of the second spring plate 208 is equipped with several second vibration motors 209. One end of the discharge plate 203 is equipped with a baffle 210 for blocking.

[0048] The bottom of the second spring plate 208 is provided with a reinforcing frame 3 mounted on the bracket 102. Two crossbeams 301 are slidably connected to the reinforcing frame 3. A motor 302 is mounted on the reinforcing frame 3. The output end of the motor 302 is provided with a positive and negative lead screw 303. Two first traction plates 304 are threadedly connected to the positive and negative lead screw 303. Each first traction plate 304 is movably connected to a second traction plate 305 mounted on the corresponding crossbeam 301. A screening cylinder 3 located on the top of the bracket 102 is provided on one side of the partition box 206. 06. The bottom of the screening cylinder 306 is provided with a first feeding hopper 307 for guiding materials. A docking plate 308 installed on the base 1 is provided on one side of the first feeding hopper 307. A second feeding hopper 309 for filtering is provided on the docking plate 308. A feeding pipe 310 for guiding flow is provided at the bottom of the second feeding hopper 309. A protective cover 311 is provided on the top of the docking plate 308. A transfer hopper 312 is provided on the side of the protective cover 311 facing the screening cylinder 306 and located between the docking plate 308 and the screening cylinder 306.

[0049] See attached document Figure 1-9 The present invention also provides a method of use, using the above-mentioned quick-freezing process monitoring equipment, the method comprising the following steps:

[0050] Step 1: When using the device, the staff installs it in the designated location. When the material is quick-frozen, the material is fed into the combing box 201 through the feeding plate 203. The combing box 201 first guides the material to prevent it from accumulating due to friction. After being guided by the combing box 201, the material is fed into the screen cylinder 2 for vibrating screening to remove impurities from the material and also to allow materials of relatively uniform size to gather together.

[0051] Step 2: After the materials are gathered together, they can be discharged through two discharge plates 203 and introduced into the corresponding baffle boxes 206 for quick freezing by the quick-freezing device 207. When the materials are discharged through the discharge plates 203, the discharge plates 203 can be rotated by the electric push rod 204 to adjust the opening size of the discharge plates 203, thereby adjusting the flow rate of the materials discharged from the screen cylinder 2, so as to avoid the material discharge flow rate being too large and causing incomplete quick freezing.

[0052] Step 3: When the material is quick-frozen, the second vibration motor 209 and the second spring plate 208 vibrate and screen the quick-freezing box 205 and the partition box 206 to prevent the material from piling up and causing incomplete quick-freezing. At the same time, it can make materials of different sizes pass through the quick-freezing box 205 through the same amplitude and be discharged from the quick-freezing box 205 and introduced into the screening cylinder 306 for screening again.

[0053] Step 4: When the material is screened on the screening cylinder 306, the material of different sizes can be fed into the first feeding hopper 307 or fed into the top of the docking plate 308 through the transfer hopper 312 by rotating the screening cylinder 306. After being screened by the second feeding hopper 309, it is discharged through the feeding pipe 310, so that the quick freezing, screening and conveying of the material are carried out simultaneously.

[0054] Step 5, and when the device is in use, the output end of the hydraulic rod 106 is repeatedly retracted and extended, thereby driving the various structures on the slide 101 to shake on the base 1, thereby improving the efficiency of the device in screening and quick-freezing.

[0055] Step six involves rotating the forward and reverse lead screws 303 via the motor 302, causing the first traction plates 304 and the second traction plates 305 to move in opposite directions due to the traction force of the rotating lead screws 303. This causes the crossbeam 301 to sway, which in turn causes the structures on the second spring plate 208, the quick-freezing box 205, and the partition box 206 to sway. This sways the material being quick-frozen by the quick-freezing device 207 inside the quick-freezing box 205, and also enables the material to be quickly frozen and preserved, thereby improving the efficiency and effectiveness of quick-freezing.

[0056] According to the above structure, when in use, the material is fed into the combing box 201 through the feeding plate 203. The combing box 201 first guides the material to avoid the material from accumulating together due to friction. After being guided by the combing box 201, the material is fed into the screen cylinder 2 for vibrating screening to remove impurities from the material and also to allow materials of relatively uniform size to gather together.

[0057] After the materials are gathered together, they can be discharged through two discharge plates 203 and introduced into the corresponding baffle boxes 206 for quick freezing by the quick-freezing device 207. When the materials are discharged through the discharge plates 203, the discharge plates 203 can be rotated by the electric push rod 204 to adjust the opening size of the discharge plates 203, thereby adjusting the flow rate of the materials discharged from the screen cylinder 2, so as to avoid the material discharge flow rate being too large and causing incomplete quick freezing. When the materials are quick-frozen, the second vibration motor 209 and the second spring plate 208 vibrate the quick-freezing box 205 and the baffle box 206 to prevent the materials from piling up and causing incomplete quick freezing. At the same time, materials of different sizes can be discharged from the quick-freezing box 205 through the same amplitude and introduced into the screening cylinder 306 for screening again.

[0058] When materials are screened on the screening cylinder 306, the rotation of the screening cylinder 306 allows materials of different sizes to be fed into the first feeding hopper 307 or into the top of the docking plate 308 via the transfer hopper 312. After being screened by the second feeding hopper 309, the materials are discharged through the feeding pipe 310, thus realizing the simultaneous freezing, screening and conveying of materials. In use, the hydraulic rod 106 repeatedly retracts and extends through its output end, thereby driving the various structures on the slide 101 to shake on the base 1, thereby improving the efficiency of the device in screening and freezing.

[0059] The motor 302 drives the positive and negative lead screws 303 to rotate, so that the first traction plates 304 and the second traction plates 305 can be displaced in opposite directions by the traction force when the positive and negative lead screws 303 rotate. This causes the cross frame 301 to sway, which in turn causes the various structures on the second spring plate 208, the quick-freezing box 205 and the partition box 206 to sway. This causes the materials in the quick-freezing box 205 that are quick-frozen by the quick-freezing device 207 to sway, and also causes the materials to be quickly frozen and locked in freshness, thereby improving the efficiency and effect of quick-freezing.

[0060] Unlike existing technologies, this application discloses a quick-freezing process monitoring device and method. By screening out impurities from the material and allowing materials of relatively uniform size to gather together, the opening size of the discharge plate 203 is adjusted to regulate the flow rate of the material discharged from the screening cylinder 2. This avoids excessive material discharge flow that could lead to incomplete quick-freezing, and enables the quick-freezing, screening, and conveying of the material to proceed simultaneously. The swaying of the cross frame 301 causes the various structures on the second spring plate 208, the quick-freezing box 205, and the partition box 206 to sway, shaking the material being quick-frozen by the quick-freezing device 207 in the quick-freezing box 205, and rapidly freezing and locking in freshness, thereby improving the efficiency and effect of quick-freezing.

[0061] The above are merely preferred embodiments of the present invention and are not intended to limit the present invention. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.

Claims

1. A quick freezing process monitoring device comprising a base (1) for support, characterised in that: The top of the base (1) is provided with a combing quick-freezing component; The combing quick-freezing assembly includes a slide (101) set on top of the base (1) for support, a sieve cylinder (2) for screening materials is set on top of the slide (101), and a combing box (201) for guiding materials is set on top of the sieve cylinder (2). Both sides of the screening cylinder (2) are provided with quick-freezing boxes (205) for storing materials, and each quick-freezing box (205) is provided with a partition box (206). The top of the partition box (206) is provided with two quick-freezing devices (207) for quick-freezing materials.

2. A quick freezing process monitoring apparatus according to claim 1, wherein: The slide (101) has two support brackets (102) on both sides, and a number of first vibration motors (103) are provided on the top of the slide (101).

3. A quick freezing process monitoring apparatus according to claim 2, wherein: Each of the first vibration motors (103) is provided with a first spring plate (104) mounted on the screen cylinder (2). A connecting seat (105) is provided on one side of the base (1). A hydraulic rod (106) is movably connected to the connecting seat (105) by a shaft pin. The output end of the hydraulic rod (106) extends to the bracket (102) and is movably connected to the bracket (102) by a shaft pin. The slide (101) is slidably connected to the base (1).

4. The quick-freezing process monitoring equipment according to claim 1, characterized in that: The top of the combing box (201) is provided with a feed inlet (202) for guiding materials. The bottom of the sieve cylinder (2) is provided with two angle-adjustable discharge plates (203). The top of each discharge plate (203) is provided with an electric push rod (204) installed on the sieve cylinder (2). The output end of each quick-freezing box (205) extends to the corresponding discharge plate (203) and is movably connected to the discharge plate (203).

5. A quick freezing process monitoring apparatus according to claim 1, wherein: The bottom of the quick-freezing box (205) is provided with a second spring plate (208), and the bottom of the second spring plate (208) is provided with a plurality of second vibration motors (209). One end of the feeding plate (203) is provided with a baffle (210) for blocking.

6. A quick freezing process monitoring apparatus according to claim 5, wherein: The bottom of the second spring plate (208) is provided with a reinforcing frame (3) mounted on the bracket (102), and two crossbars (301) are slidably connected on the reinforcing frame (3), and a motor (302) is provided on the reinforcing frame (3).

7. A quick freezing process monitoring apparatus according to claim 6, wherein: The output end of the motor (302) is provided with a positive and negative lead screw (303), and two first traction plates (304) are threadedly connected to the positive and negative lead screw (303), and each of the first traction plates (304) is movably connected to a second traction plate (305) installed on the corresponding crossbeam (301).

8. A quick freezing process monitoring apparatus according to claim 1, wherein: The partition box (206) has a screening cylinder (306) located on the top of the bracket (102) on one side, and a first feeding hopper (307) for guiding materials is provided at the bottom of the screening cylinder (306).

9. A quick freezing process monitoring apparatus according to claim 8, wherein: A docking plate (308) mounted on a base (1) is provided on one side of the first feeding hopper (307). A second feeding hopper (309) for filtering is provided on the docking plate (308). A feeding pipe (310) for guiding flow is provided at the bottom of the second feeding hopper (309). A protective cover (311) is provided on the top of the docking plate (308). A transfer hopper (312) is provided on the side of the protective cover (311) facing the screening cylinder (306) and located between the docking plate (308) and the screening cylinder (306).

10. A method of use, using the quick freezing process monitoring device according to any one of claims 1-9, characterized in that: The method includes the following steps: Step 1: The material is fed into the combing box (201) through the feeding plate (203). The combing box (201) first guides the material and the screen cylinder (2) vibrates the screen. Step 2: The material is discharged through two discharge plates (203) and introduced into the corresponding partition box (206) for quick freezing by the quick-freezing device (207); Step 3: Materials of different sizes are discharged from the quick-freezing box (205) through the same amplitude and introduced into the screening cylinder (306) for screening again; Step four: After being screened by the second hopper (309), the material is discharged through the discharge pipe (310), thus realizing the simultaneous freezing, screening and conveying of the material.

Citation Information

Patent Citations

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