A blueberry radiation-resistant beverage content detection device

By designing a detection device that includes evaporation assembly, heating plate, feed assembly and detection assembly, the problem that existing equipment is difficult to detect multiple samples at the same time and have poor moisture removal effect is solved, and a high-precision detection of blueberry radiation-resistant beverage content is achieved.

CN118443895BActive Publication Date: 2025-05-23JIANGSU XINSHANGXUE BRAND MANAGEMENT CO LTD +1
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Patent Information

Application Number
CN202410545449.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-05-06
Publication Date
2025-05-23
Estimated Expiration
2044-05-06

AI Technical Summary

Technical Problem

The existing blueberry radiation-resistant beverage content detection equipment is difficult to detect multiple samples at the same time, and when removing moisture in the beverage, the effect is poor, and the resulting concentrate is impure, which seriously affects the detection accuracy.

Method used

A detection device including an evaporation assembly, a heating plate, a feed assembly and a detection assembly are designed. The evaporation assembly is installed in the evaporation box through the lifting assembly, and the moisture in the beverage is heated and evaporated by a heating plate. The evaporated liquid is detected through the detection assembly for content.

Benefits of technology

The ability to detect multiple samples simultaneously is realized, and the purity of the concentrate is improved when removing moisture, significantly improving the detection accuracy.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of content analysis and detection, and discloses a blueberry anti-radiation beverage content detection device, comprising: a base and an evaporation box fixedly mounted on the base, wherein a control panel is further arranged on the base; an evaporation component, wherein the evaporation component is mounted in the evaporation box through a lifting component; a heating plate for heating the beverage in the evaporation component, wherein the heating plate is fixedly mounted on the inner wall of the evaporation box; a feeding component for inputting the beverage into the evaporation component, wherein the feeding component is arranged on the evaporation box; and a detection component for detecting the content of the evaporated beverage, wherein the detection component is arranged in the base; the invention avoids the problem that the existing blueberry anti-radiation beverage content detection device is difficult to detect multiple samples at the same time, and the effect of removing water from the beverage is poor, the obtained concentrated liquid is impure, and the detection accuracy is seriously affected by the coordinated arrangement of the evaporation component, the heating plate, the feeding component and the detection component.
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Description

Technical Field

[0001] The invention belongs to the technical field of content analysis and detection, and specifically relates to a content detection device for a blueberry anti-radiation beverage. Background Art

[0002] Blueberry is a fruit rich in antioxidants and has strong anti-radiation ability. In order to detect the content of anti-radiation ingredients in blueberry drinks, the following steps can be taken: Prepare samples: Select blueberry drinks of different brands and types to ensure that the samples are representative; Extract antioxidants from samples: Filter the blueberry drinks to remove large particles, then rotary evaporate the filtrate to remove water and obtain blueberry concentrate; Detect the content of antioxidants: Use analytical methods such as high performance liquid chromatography (HPLC) or gas chromatography (GC) to separate and identify the antioxidants in the blueberry concentrate; Measure the anti-radiation ability of antioxidants: Use cell tests or animal tests to measure the anti-radiation ability of blueberry concentrate; Compare different samples: Compare blueberry drinks of different brands and types to observe the differences in their antioxidant content and anti-radiation ability; Evaluate the anti-radiation effect of blueberry drinks: Based on the experimental results, evaluate the anti-radiation effect of blueberry drinks to provide a reference for consumers.

[0003] The existing blueberry anti-radiation beverage content detection equipment is difficult to detect multiple samples at the same time, and the effect is poor when removing water from the beverage, and the obtained concentrated liquid is impure, which seriously affects the detection accuracy. Therefore, in view of the above situation, it is urgent to provide a blueberry anti-radiation beverage content detection equipment to overcome the shortcomings in current practical applications. Summary of the invention

[0004] In view of the above situation, in order to overcome the defects of the prior art, the present invention provides a blueberry anti-radiation beverage content detection device, which effectively solves the problem that the existing blueberry anti-radiation beverage content detection equipment is difficult to detect multiple samples at the same time, and the effect is poor when removing water from the beverage, the obtained concentrated liquid is impure, and the image detection accuracy is seriously affected.

[0005] To achieve the above object, the present invention provides the following technical solution: a blueberry radiation-resistant beverage content detection device, comprising:

[0006] A base and an evaporation box fixedly mounted on the base, wherein the base is also provided with a control panel;

[0007] An evaporation component, wherein the evaporation component is installed in the evaporation box through a lifting component;

[0008] A heating plate for heating the beverage in the evaporation assembly, wherein the heating plate is fixedly mounted on the inner wall of the evaporation box;

[0009] A feeding assembly for feeding beverage into the evaporation assembly, wherein the feeding assembly is arranged on the evaporation box;

[0010] And a detection component for detecting the content of the evaporated beverage, wherein the detection component is arranged in the base.

[0011] When the lifting assembly drives the evaporation assembly to move toward the top side of the evaporation box, the evaporation assembly can contact the feeding assembly, thereby inputting the beverage into the evaporation assembly. After the input is completed, the lifting assembly drives the evaporation assembly to reset, and the heat generated by the heating plate in the evaporation box can heat the beverage in the evaporation assembly, thereby evaporating the water in the beverage. After the evaporation is completed, the lifting assembly will drive the evaporation assembly to move toward the base side, so that the evaporation assembly can contact the detection assembly, thereby introducing the beverage in the evaporation assembly into the detection assembly, and the relevant content in the beverage is detected by the detection assembly. Compared with the prior art, the present invention avoids the problem that the existing blueberry anti-radiation beverage content detection equipment is difficult to detect multiple samples at the same time through the coordinated arrangement of the evaporation assembly, the heating plate, the feeding assembly and the detection assembly, and the effect is poor when removing water from the beverage, and the obtained concentrated liquid is impure, which seriously affects the detection accuracy.

[0012] As a further optimization of the technical solution, the evaporation component includes:

[0013] A second support plate, wherein the second support plate is connected to the lifting assembly and a fourth gear is fixedly mounted on the second support plate;

[0014] A first support plate, wherein the first support plate is rotatably mounted on the second support plate via a rotating shaft, and a motor for driving the first support plate to rotate is also provided on the second support plate; the first support plate and the second support plate are both cross-shaped structures;

[0015] a third support plate, the third support plate being rotatably mounted on the first support plate via a transmission shaft, and a third gear meshing with the fourth gear being fixedly mounted on the transmission shaft;

[0016] And an evaporating flask, which is rotatably mounted on one end of the third supporting plate away from the transmission shaft, and the evaporating flask is connected to the feeding assembly and the evaporating flask is connected to the detection assembly through a quick-connect assembly, and multiple groups of evaporating flasks are provided.

[0017] As a further optimization of the technical solution, the quick-connect assembly includes a third conduit and a fourth conduit, the third conduit is fixedly installed at the bottom of the evaporation flask, and the fourth conduit is rotatably installed at the top of the evaporation flask. The third conduit and the fourth conduit both have a guide channel and a blocking assembly for blocking the guide channel, and the blocking assembly includes:

[0018] A push rod, wherein the push rod is slidably installed in the guide channel through a support rod;

[0019] A sealing plug is fixedly mounted on the top rod, and a spring for elastically supporting the sealing plug is also arranged on the support rod.

[0020] As a further optimization of the technical solution, the evaporation component further includes:

[0021] A driven wheel, the driven wheel is fixedly mounted on the fourth guide tube;

[0022] An elastic telescopic rod, one end of which is fixedly connected to the first support plate, and the other end of which is fixedly connected to the bottom of the evaporator box;

[0023] And a friction wheel fixedly mounted on the elastic telescopic rod.

[0024] As a further optimization of the technical solution, the evaporation component also includes a first gear and a second gear, the first gear is fixedly mounted on the third conduit, the second gear is fixedly mounted on the transmission shaft, and the second gear is meshed with the first gear.

[0025] As a further optimization of the technical solution, the fourth duct is also connected to a spoiler assembly, which includes a connecting plate, a rotating rod and a stirring plate. The rotating rod is fixedly mounted on the fourth duct through the connecting plate, and multiple groups of stirring plates are fixedly mounted on the rotating rod.

[0026] As a further optimization of the present technical solution, the lifting assembly includes a telescopic cylinder and a guide rod, the guide rod is used for the sliding connection between the second support plate and the top of the evaporator box, the telescopic cylinder is fixedly installed on the top of the evaporator box, and the telescopic end of the telescopic cylinder is fixedly connected to the second support plate.

[0027] The telescopic cylinder can drive the second supporting plate to move in the vertical direction, thereby driving the evaporation assembly to move as a whole. The motor can drive the third gear to rotate around the fourth gear by driving the first supporting plate to rotate, so that the feed pipe drives the transmission shaft to rotate, and then the evaporation bottle rotates around the motor while the evaporation bottle rotates with the transmission shaft as the axis, so that the beverage in the evaporation bottle can be fully heated and the evaporation effect is improved. The second gear and the first gear are matched to each other, and the evaporation bottle can rotate on the third supporting plate. When the evaporation bottle rotates with the transmission shaft as the axis, the driven wheel can intermittently contact the friction wheel, so that the fourth conduit can rotate in the evaporation bottle. The fourth conduit can drive the stirring plate to rotate with the fourth conduit as the axis by driving the connecting plate and the rotating rod to rotate, and cooperates with the self-rotation of the evaporation bottle to further improve the turbulence effect and the evaporation effect, so that the water in the beverage is fully evaporated.

[0028] As a further optimization of the present technical solution, the feed assembly includes a feed pipe and a second conduit. The feed pipe is fixedly mounted on the evaporator box, and a filter plate is also provided inside the feed pipe. The second conduit is used for connecting the feed pipe and the quick-connect assembly. The feed pipe is provided in multiple groups.

[0029] As a further optimization of the present technical solution, the detection assembly includes a detection bottle, a discharge pipe and a content detection probe. The detection bottle is fixedly installed in the base, and there are multiple groups of detection bottles. Each group of detection bottles is provided with a content detection probe. The discharge pipe is provided in the base, and the discharge pipe is connected to the detection bottle. A solenoid valve is also provided on the discharge pipe.

[0030] Impurities such as pulp in the beverage can be filtered through the filter plate. When the lifting assembly drives the evaporation assembly to move upward, the push rod can contact the baffle rod in the second conduit. The push rod will push the sealing block to move so that the diversion channel is not blocked. The beverage filtered in the feed pipe enters the evaporation bottle through the fourth conduit under the action of gravity. After evaporation is completed, the lifting assembly drives the evaporation assembly to move to one side of the base, so that the push rod in the third conduit contacts the baffle rod in the first conduit, thereby guiding the evaporated beverage in the evaporation bottle into the detection bottle; the coordinated arrangement of the solenoid valve and the discharge pipe facilitates the discharge of the detected beverage.

[0031] As a further optimization of the technical solution, both the second conduit and the first conduit are provided with a blocking rod for pressing the ejector rod.

[0032] Compared with the prior art, the present invention has the following beneficial effects:

[0033] When the lifting component drives the evaporation component to move toward the top side of the evaporation box, the evaporation component can contact the feeding component, so that the beverage is input into the evaporation component. After the input is completed, the lifting component drives the evaporation component to reset, and the heat generated by the heating plate in the evaporation box can heat the beverage in the evaporation component, so that the water in the beverage is evaporated. After the evaporation is completed, the lifting component will drive the evaporation component to move toward the base side, so that the evaporation component can contact the detection component, so that the beverage in the evaporation component is introduced into the detection component, and the relevant content in the beverage is detected by the detection component; the coordination of the evaporation component, the heating plate, the feeding component and the detection component avoids the problem that the existing blueberry radiation-resistant beverage content detection equipment is difficult to detect multiple samples at the same time, and the effect is poor when removing water from the beverage, and the obtained concentrated liquid is impure, which seriously affects the detection accuracy;

[0034] The telescopic cylinder can drive the second support plate to move in the vertical direction, thereby driving the evaporation assembly to move as a whole. The motor can drive the third gear to rotate around the fourth gear by driving the first support plate to rotate, so that the feed pipe drives the transmission shaft to rotate, and then the evaporation bottle rotates around the motor while the evaporation bottle rotates with the transmission shaft as the axis, so that the beverage in the evaporation bottle can be fully heated and the evaporation effect is improved. The second gear and the first gear are arranged in coordination with each other, and the evaporation bottle rotates on the third support plate. When the evaporation bottle rotates with the transmission shaft as the axis, the driven wheel can intermittently contact the friction wheel, so that the fourth conduit can rotate in the evaporation bottle. The fourth conduit can drive the stirring plate to rotate with the fourth conduit as the axis by driving the connecting plate and the rotating rod to rotate, and cooperates with the self-rotation of the evaporation bottle to further improve the turbulence effect and the evaporation effect, so that the water in the beverage is fully evaporated.

[0035] Impurities such as pulp in the beverage can be filtered through the filter plate. When the lifting assembly drives the evaporation assembly to move upward, the push rod can contact the baffle rod in the second conduit. The push rod will push the sealing block to move so that the diversion channel is not blocked. The beverage filtered in the feed pipe enters the evaporation bottle through the fourth conduit under the action of gravity. After evaporation is completed, the lifting assembly drives the evaporation assembly to move to one side of the base, so that the push rod in the third conduit contacts the baffle rod in the first conduit, thereby guiding the evaporated beverage in the evaporation bottle into the detection bottle; the coordinated arrangement of the solenoid valve and the discharge pipe facilitates the discharge of the detected beverage. BRIEF DESCRIPTION OF THE DRAWINGS

[0036] In order to more clearly illustrate the specific implementation of the present invention or the technical solutions in the prior art, the following will briefly introduce the drawings required for the specific implementation or the prior art description. Obviously, the drawings described below are some implementations of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without creative work. The drawings are used to provide a further understanding of the present invention and constitute a part of the specification. Together with the embodiments of the present invention, they are used to explain the present invention and do not constitute a limitation of the present invention.

[0037] In the attached picture:

[0038] Figure 1 A schematic structural diagram of a blueberry anti-radiation beverage content detection device provided in an embodiment of the present invention.

[0039] Figure 2 A schematic cross-sectional view of a device for detecting the content of a blueberry anti-radiation beverage provided in an embodiment of the present invention.

[0040] Figure 3A schematic cross-sectional view of an evaporating bottle in a device for detecting the content of a blueberry radiation-resistant beverage provided by an embodiment of the present invention.

[0041] Figure 4 for Figure 3 Schematic diagram of the enlarged structure at point A in the middle.

[0042] Figure 5 A schematic structural diagram of an evaporation component in a device for detecting the content of a blueberry radiation-resistant beverage provided by an embodiment of the present invention.

[0043] Figure 6 A schematic cross-sectional structural diagram of a feeding component in a blueberry radiation-resistant beverage content detection device provided in an embodiment of the present invention.

[0044] Figure 7 A schematic structural diagram of auxiliary components in a device for detecting the content of a blueberry radiation-resistant beverage provided in an embodiment of the present invention.

[0045] Figure 8 A partial cross-sectional structural schematic diagram of a base in a blueberry anti-radiation beverage content detection device provided in an embodiment of the present invention.

[0046] In the figure: 1-base, 2-evaporation box, 3-feeding pipe, 4-telescopic cylinder, 5-control panel, 6-heating plate, 7-guide rod, 8-detection bottle, 9-content detection probe, 10-solenoid valve, 11-first conduit, 12-second conduit, 13-discharge pipe, 14-elastic telescopic rod, 15-friction wheel, 16-evaporation bottle, 17-first support plate, 18-second support plate, 19-stirring plate, 20-rotating rod, 21-connecting plate, 22-top rod, 23-guiding channel, 24-sealing plug, 25-spring, 26-support rod, 27-motor, 28-driven wheel, 29-third conduit, 30-fourth conduit, 31-third support plate, 32-first gear, 33-second gear, 34-transmission shaft, 35-third gear, 36-fourth gear, 37-filter plate, 38-blocking rod. DETAILED DESCRIPTION

[0047] The technical solution of the present invention will be described clearly and completely below in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.

[0048] For ease of description, spatially relative terms such as "above", "above", "on the upper surface of", "above", etc. may be used here to describe the spatial positional relationship between a device or feature and other devices or features as shown in the figure. It should be understood that spatially relative terms are intended to include different orientations of the device in use or operation in addition to the orientation described in the figure. For example, if the device in the accompanying drawings is inverted, the device described as "above other devices or structures" or "above other devices or structures" will be positioned as "below other devices or structures" or "below other devices or structures". Thus, the exemplary term "above" can include both "above" and "below". The device can also be positioned in other different ways (rotated 90 degrees or in other orientations), and the spatially relative descriptions used here are interpreted accordingly.

[0049] It should be noted that the terms used herein are only for describing specific embodiments and are not intended to limit the exemplary embodiments according to the present application. As used herein, unless the context clearly indicates otherwise, the singular form is also intended to include the plural form. In addition, it should be understood that when the terms "comprise" and / or "include" are used in this specification, it indicates the presence of features, steps, operations, devices, components and / or combinations thereof.

[0050] It should be noted that the terms "first", "second", etc. in the specification and claims of the present application and the above-mentioned drawings are used to distinguish similar objects, and are not necessarily used to describe a specific order or sequence. It should be understood that the data used in this way can be interchangeable where appropriate, so that the embodiments of the present application described herein can be implemented in an order other than those illustrated or described herein, for example. In addition, the terms "including" and "having" and any of their variations are intended to cover non-exclusive inclusions, for example, a process, method, system, product or device comprising a series of steps or units is not necessarily limited to those steps or units clearly listed, but may include other steps or units that are not clearly listed or inherent to these processes, methods, products or devices. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood in specific circumstances.

[0051] The present invention is further explained below in conjunction with specific implementation modes.

[0052] See also Figure 1-Figure 8 , an embodiment of the present invention provides a blueberry anti-radiation beverage content detection device, the blueberry anti-radiation beverage content detection device comprising:

[0053] A base 1 and an evaporation box 2 fixedly mounted on the base 1, wherein the base 1 is also provided with a control panel 5;

[0054] An evaporation component, which is installed in the evaporation box 2 through a lifting component;

[0055] A heating plate 6 for heating the beverage in the evaporation assembly, wherein the heating plate 6 is fixedly mounted on the inner wall of the evaporation box 2;

[0056] A feeding assembly for feeding beverage into the evaporation assembly, wherein the feeding assembly is arranged on the evaporation box 2;

[0057] And a detection component for detecting the content of the evaporated beverage, wherein the detection component is arranged in the base 1.

[0058] In an embodiment of the present invention, when the lifting component drives the evaporation component to move toward the top side of the evaporation box 2, the evaporation component can contact the feeding component, so that the beverage is input into the evaporation component. After the input is completed, the lifting component drives the evaporation component to reset, and the heat generated by the heating plate 6 in the evaporation box 2 can heat the beverage in the evaporation component, so that the water in the beverage is evaporated. After the evaporation is completed, the lifting component will drive the evaporation component to move toward the side of the base 1, so that the evaporation component can contact the detection component, so that the beverage in the evaporation component is introduced into the detection component, and the relevant content in the beverage is detected by the detection component. Compared with the prior art, the present invention avoids the problem that the existing blueberry anti-radiation beverage content detection equipment is difficult to detect multiple samples at the same time through the coordinated arrangement of the evaporation component, the heating plate 6, the feeding component and the detection component, and the effect is poor when removing water from the beverage, and the obtained concentrate is impure, which seriously affects the detection accuracy.

[0059] In one embodiment of the present invention, see Figure 1-Figure 7 , the evaporation component comprises:

[0060] A second support plate 18, wherein the second support plate 18 is connected to the lifting assembly, and a fourth gear 36 is fixedly mounted on the second support plate 18;

[0061] A first support plate 17, wherein the first support plate 17 is rotatably mounted on the second support plate 18 via a rotating shaft, and the second support plate 18 is further provided with a motor 27 for driving the first support plate 17 to rotate; the first support plate 17 and the second support plate 18 are both cross-shaped structures;

[0062] A third support plate 31, wherein the third support plate 31 is rotatably mounted on the first support plate 17 via a transmission shaft 34, and a third gear 35 meshing with a fourth gear 36 is fixedly mounted on the transmission shaft 34;

[0063] and an evaporating flask 16, wherein the evaporating flask 16 is rotatably mounted on one end of the third supporting plate 31 away from the transmission shaft 34, and the evaporating flask 16 is connected to the feeding assembly and the evaporating flask 16 is connected to the detection assembly via a quick-connect assembly, and the evaporating flask 16 is provided in multiple groups;

[0064] The quick-connect assembly includes a third conduit 29 and a fourth conduit 30. The third conduit 29 is fixedly installed at the bottom of the evaporation flask 16, and the fourth conduit 30 is rotatably installed at the top of the evaporation flask 16. The third conduit 29 and the fourth conduit 30 both have a guide channel 23 and a blocking assembly for blocking the guide channel 23. The blocking assembly includes:

[0065] A top rod 22, wherein the top rod 22 is slidably mounted in the guide channel 23 via a support rod 26;

[0066] A sealing plug 24 is fixedly mounted on the top rod 22, and a spring 25 for elastically supporting the sealing plug 24 is also provided on the support rod 26;

[0067] The evaporation assembly also includes:

[0068] A driven wheel 28, wherein the driven wheel 28 is fixedly mounted on the fourth guide tube 30;

[0069] An elastic telescopic rod 14, one end of which is fixedly connected to the first support plate 17, and the other end of which is fixedly connected to the bottom of the evaporator box 2; wherein the two sections of the elastic telescopic rod 14 do not rotate relative to each other;

[0070] and a friction wheel 15 fixedly mounted on the elastic telescopic rod 14;

[0071] The evaporation assembly further includes a first gear 32 and a second gear 33, wherein the first gear 32 is fixedly mounted on the third conduit 29, and the second gear 33 is fixedly mounted on the transmission shaft 34, and the second gear 33 is meshed with the first gear 32;

[0072] The fourth conduit 30 is also connected to a spoiler assembly, which includes a connecting plate 21, a rotating rod 20 and a stirring plate 19. The rotating rod 20 is fixedly mounted on the fourth conduit 30 through the connecting plate 21, and a plurality of stirring plates 19 are fixedly mounted on the rotating rod 20.

[0073] The lifting assembly includes a telescopic cylinder 4 and a guide rod 7, wherein the guide rod 7 is used for sliding connection between the second support plate 18 and the top of the evaporator box 2, the telescopic cylinder 4 is fixedly installed on the top of the evaporator box 2, and the telescopic end of the telescopic cylinder 4 is fixedly connected to the second support plate 18.

[0074] In this embodiment, the telescopic cylinder 4 can drive the second support plate 18 to move in the vertical direction, thereby driving the overall movement of the evaporation assembly. The motor 27 can drive the third gear 35 to rotate around the fourth gear 36 by driving the first support plate 17 to rotate, so as to drive the feed pipe 3 to drive the transmission shaft 34 to rotate. Furthermore, while the evaporation bottle 16 rotates around the motor 27, the evaporation bottle 16 will also rotate around the transmission shaft 34 as the axis, so that the beverage in the evaporation bottle 16 can be fully heated, improving the evaporation effect. Through the cooperative setting of the second gear 33 and the first gear 32, the evaporation bottle 16 can also rotate on the third support plate 31. And while the evaporation bottle 16 rotates around the transmission shaft 34 as the axis, the driven wheel 28 can intermittently contact the friction wheel 15, enabling the fourth conduit 30 to rotate in the evaporation bottle 16. The fourth conduit 30 can drive the connecting plate 21 and the rotating rod 20 to rotate, so as to drive the stirring plate 19 to rotate around the fourth conduit 30 as the axis, and cooperate with the self-rotation of the evaporation bottle 16, further improving the turbulence effect and further enhancing the evaporation effect, so that the water in the beverage is fully evaporated.

[0075] In an embodiment of the present invention, please refer to Figure 1-Figure 8 , the feeding assembly includes a feed pipe 3 and a second conduit 12. The feed pipe 3 is fixedly installed on the evaporation tank 2, and a filter plate 37 is further arranged inside the feed pipe 3. The second conduit 12 is used for connecting the feed pipe 3 and the quick-connection assembly. Multiple groups of the feed pipes 3 are provided;

[0076] The detection assembly includes a detection bottle 8, a discharge pipe 13, and a content detection probe 9. The detection bottle 8 is fixedly installed in the base 1, and multiple groups of the detection bottles 8 are provided. A content detection probe 9 is arranged on each group of detection bottles 8. The discharge pipe 13 is arranged in the base 1 and is communicated with the detection bottle 8. An electromagnetic valve 10 is further arranged on the discharge pipe 13;

[0077] Blocking rods 38 for pressing the ejector rod 22 are arranged on both the second conduit 12 and the first conduit 11.

[0078] In this embodiment, the filter plate 37 can filter impurities such as pulp in the beverage. When the lifting assembly drives the evaporation assembly to move upward, the ejector rod 22 can contact the blocking rod 38 in the second conduit 12 (only when the third support plate 31 is as shown in the appendix Figure 5The ejector 22 pushes the sealing plug 24 to move so that the guide channel 23 is not blocked. The filtered beverage in the feed pipe 3 enters the evaporation bottle 16 through the fourth conduit 30 under the action of gravity. After evaporation is completed, the lifting assembly drives the evaporation assembly to move toward the side of the base 1, so that the ejector 22 in the third conduit 29 contacts the blocking rod 38 in the first conduit 11, thereby guiding the evaporated beverage in the evaporation bottle 16 into the detection bottle 8; the electromagnetic valve 10 and the discharge pipe 13 are matched to facilitate the discharge of the detected beverage.

[0079] Working principle: when the lifting assembly drives the evaporation assembly to move toward the top side of the evaporation box 2, the evaporation assembly can contact the feeding assembly, so that the beverage is input into the evaporation assembly. After the input is completed, the lifting assembly drives the evaporation assembly to reset, and the heat generated by the heating plate 6 in the evaporation box 2 can heat the beverage in the evaporation assembly, so that the water in the beverage is evaporated. After the evaporation is completed, the lifting assembly will drive the evaporation assembly to move toward the side of the base 1, so that the evaporation assembly can contact the detection assembly, so that the beverage in the evaporation assembly is introduced into the detection assembly, and the relevant content in the beverage is detected by the detection assembly; specifically, the telescopic cylinder 4 can drive the second support plate 18 to move in the vertical direction, thereby driving the evaporation assembly to move as a whole, and the motor 27 can drive the third gear 35 to rotate around the fourth gear 36 by driving the first support plate 17 to rotate, so that the feeding pipe 3 drives the transmission shaft 34 to rotate, and then the evaporation bottle 16 rotates around the motor 27. At the same time, the evaporation bottle 16 will rotate with the transmission shaft 34 as the axis, so that the beverage in the evaporation bottle 16 can be fully heated and the evaporation effect is improved. The second gear 33 and the first gear 32 are arranged in cooperation, so that the evaporation bottle 16 can be rotated on the third support plate 31, and when the evaporation bottle 16 rotates with the transmission shaft 34 as the axis, the driven wheel 28 can intermittently contact with the friction wheel 15, so that the fourth conduit 30 can rotate in the evaporation bottle 16. The fourth conduit 30 can drive the stirring plate 19 to rotate with the fourth conduit 30 as the axis by driving the connecting plate 21 and the rotating rod 20 to rotate, and cooperate with the self-rotation of the evaporation bottle 16 to further improve the turbulence effect and the evaporation effect, so that the water in the beverage is fully evaporated; the pulp and other impurities in the beverage can be filtered through the filter plate 37. When the lifting assembly drives the evaporation assembly to move upward, the top rod 22 can contact with the blocking rod 38 in the second conduit 12 (only when the third support plate 31 is in the attached Figure 5The ejector 22 pushes the sealing plug 24 to move so that the guide channel 23 is not blocked. The filtered beverage in the feed pipe 3 enters the evaporation bottle 16 through the fourth conduit 30 under the action of gravity. After evaporation is completed, the lifting assembly drives the evaporation assembly to move toward the side of the base 1, so that the ejector 22 in the third conduit 29 contacts the blocking rod 38 in the first conduit 11, thereby guiding the evaporated beverage in the evaporation bottle 16 into the detection bottle 8; the electromagnetic valve 10 and the discharge pipe 13 are matched to facilitate the discharge of the detected beverage.

[0080] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit it. Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art should understand that they can still modify the technical solutions described in the aforementioned embodiments, or replace some or all of the technical features therein with equivalents. However, these modifications or replacements do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of the present invention.

Claims

1. A blueberry radiation-resistant beverage content detection device, comprising a base (1) and an evaporation box (2) fixedly mounted on the base (1), wherein the base (1) is also provided with a control panel (5), characterized in that: Also includes: An evaporation component, the evaporation component being installed in the evaporation box (2) via a lifting component; A heating plate (6) for heating the beverage in the evaporation assembly, wherein the heating plate (6) is fixedly mounted on the inner wall of the evaporation box (2); A feed assembly for feeding beverages into the evaporation assembly, the feed assembly being arranged on the evaporation box (2); and a detection component for detecting the content of the evaporated beverage, the detection component being arranged in the base (1); The evaporation assembly comprises: a second support plate (18), the second support plate (18) being connected to the lifting assembly, and a fourth gear (36) being fixedly mounted on the second support plate (18); a first support plate (17), wherein the first support plate (17) is rotatably mounted on the second support plate (18) via a rotating shaft, and the second support plate (18) is also provided with a motor (27) for driving the first support plate (17) to rotate; the first support plate (17) and the second support plate (18) are both cross-shaped structures; a third support plate (31), the third support plate (31) being rotatably mounted on the first support plate (17) via a transmission shaft (34), and a third gear (35) meshing with a fourth gear (36) being fixedly mounted on the transmission shaft (34); and an evaporating flask (16), wherein the evaporating flask (16) is rotatably mounted on an end of the third support plate (31) away from the transmission shaft (34), and the evaporating flask (16) and the feeding assembly as well as the evaporating flask (16) and the detection assembly are connected via a quick-connect assembly, and a plurality of groups of evaporating flasks (16) are provided; The quick-connect assembly comprises a third conduit (29) and a fourth conduit (30), wherein the third conduit (29) is fixedly mounted on the bottom of the evaporation flask (16), and the fourth conduit (30) is rotatably mounted on the top of the evaporation flask (16), and each of the third conduit (29) and the fourth conduit (30) has a flow guide channel (23) and a blocking assembly for blocking the flow guide channel (23), wherein the blocking assembly comprises: A push rod (22), wherein the push rod (22) is slidably mounted in the guide channel (23) via a support rod (26); A sealing plug (24) is fixedly mounted on the top rod (22), and a spring (25) for elastically supporting the sealing plug (24) is also provided on the support rod (26).

2. The blueberry radiation-resistant beverage content detection device according to claim 1, characterized in that: The evaporation assembly also includes: A driven wheel (28), the driven wheel (28) being fixedly mounted on the fourth guide tube (30); An elastic telescopic rod (14), one end of the elastic telescopic rod (14) being fixedly connected to the first support plate (17), and the other end of the elastic telescopic rod (14) being fixedly connected to the bottom of the evaporation box (2); and a friction wheel (15) fixedly mounted on the elastic telescopic rod (14).

3. The blueberry radiation-resistant beverage content detection device according to claim 1, characterized in that: The evaporation component further comprises a first gear (32) and a second gear (33), wherein the first gear (32) is fixedly mounted on the third conduit (29), and the second gear (33) is fixedly mounted on the transmission shaft (34), and the second gear (33) is meshed with the first gear (32).

4. The blueberry radiation-resistant beverage content detection device according to claim 2, characterized in that: The fourth conduit (30) is also connected to a spoiler assembly, the spoiler assembly comprising a connecting plate (21), a rotating rod (20) and a stirring plate (19), the rotating rod (20) being fixedly mounted on the fourth conduit (30) via the connecting plate (21), and a plurality of stirring plates (19) being fixedly mounted on the rotating rod (20).

5. The blueberry radiation-resistant beverage content detection device according to claim 1, characterized in that: The lifting assembly comprises a telescopic cylinder (4) and a guide rod (7); the guide rod (7) is used for sliding connection between the second support plate (18) and the top of the evaporation box (2); the telescopic cylinder (4) is fixedly mounted on the top of the evaporation box (2), and the telescopic end of the telescopic cylinder (4) is fixedly connected to the second support plate (18).

6. The blueberry radiation-resistant beverage content detection device according to claim 1, characterized in that: The feed assembly comprises a feed pipe (3) and a second conduit (12); the feed pipe (3) is fixedly mounted on the evaporator box (2), and a filter plate (37) is further provided in the feed pipe (3); the second conduit (12) is used for connecting the feed pipe (3) to the quick-connect assembly; and a plurality of feed pipes (3) are provided.

7. The blueberry radiation-resistant beverage content detection device according to claim 6, characterized in that: The detection assembly comprises a detection bottle (8), a discharge pipe (13) and a content detection probe (9); the detection bottle (8) is fixedly mounted in the base (1), and a plurality of groups of detection bottles (8) are provided, each group of detection bottles (8) is provided with a content detection probe (9); the discharge pipe (13) is provided in the base (1), and the discharge pipe (13) is connected to the detection bottle (8); and a solenoid valve (10) is also provided on the discharge pipe (13).

8. The blueberry radiation-resistant beverage content detection device according to claim 7, characterized in that: The second conduit (12) and the first conduit (11) are both provided with a blocking rod (38) for pressing the ejector rod (22).

Citation Information

Patent Citations

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