A packing storage device, a wall breaking machine and a packing control method of a wall breaking machine

By adjusting the internal pressure of the blender using a modified atmosphere device, the food is automatically stored in a container, solving the problem of oxidation and spoilage after juicing and achieving convenient storage and preservation.

CN117104579BActive Publication Date: 2026-01-06GREE ELECTRIC APPLIANCE INC OF ZHUHAI
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Patent Information

Application Number
CN202310864392.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-07-14
Publication Date
2026-01-06
Estimated Expiration
2043-07-14

AI Technical Summary

Technical Problem

Existing high-speed blenders often result in juices that are difficult to consume immediately, causing the food to oxidize and turn brown when exposed to air, affecting both taste and nutrition. Furthermore, the process of pouring the juice out is labor-intensive and inconvenient.

Method used

The modified atmosphere packaging system adjusts the internal pressure of the device, automatically pushing the food into the container for storage. It also isolates the food from air contact through a vacuum pump or gas cylinder, achieving a preservation effect.

Benefits of technology

It can automatically store food without manual operation, preventing oxidation and spoilage, and improving convenience and freshness.

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention relates to the field of household appliance technology, specifically to a packaging and storage device, a high-speed blender, and a packaging control method for the high-speed blender. The packaging and storage device includes a container connected to a device; and a modified atmosphere assembly (MAP) connected to the device. The MAP adjusts the pressure of the device to introduce liquid materials into the container. This packaging and storage device can quickly package materials from the device into other containers for storage, effectively preventing the materials from being exposed to air and thus providing a preservation effect.
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Description

Technical Field

[0001] This invention relates to the field of household appliance technology, specifically to a packaging and storage device, a blender, and a packaging control method for the blender. Background Technology

[0002] A high-speed blender is a food processing machine that uses ultra-high rotation speed to crush ingredients such as vegetables, fruits, nuts, and grains. When using a high-speed blender, fruits, vegetables, and other ingredients are placed in the blending cup and blended to obtain juice. Currently, the juice obtained after blending needs to be consumed immediately or poured into other containers for storage. In real life, because the amount of juice produced is often too large, it is frequently not consumed immediately, leading to waste.

[0003] In response, people choose to preserve the juice, but currently they simply pour the juice out and put it back into a container. This method easily exposes the food to air, causing it to oxidize and turn brown, affecting the taste and nutrition of the food. In addition, the process of pouring out the juice is labor-intensive and the juice is easy to pour out, which is inconvenient to operate and affects the user experience of the blender.

[0004] Currently, some solution dispensing devices on the market require the apparatus to be divided into several storage compartments. The solution is injected into the storage compartments, and by rotating the apparatus, the corresponding storage compartment is transferred to the corresponding receiving bag, thereby dispensing the solution from the storage compartment. However, this requires the apparatus to be specifically divided into several storage compartments, which obviously cannot be applied to apparatuses without storage compartments, thus limiting its application. Summary of the Invention

[0005] One of the objectives of this invention is to overcome the shortcomings of the prior art by providing a packaging and storage device that can quickly package materials in a device into other containers for storage, effectively preventing the materials from being exposed to air and thus having a preservation effect.

[0006] The second objective of this invention is to provide a high-speed blender.

[0007] The third objective of this invention is to provide a packaging control method for a high-speed blender.

[0008] To achieve one of the above objectives, the present invention provides the following technical solution:

[0009] Provides a packaging storage device, including

[0010] A container, which is connected to the device;

[0011] A modified atmosphere assembly is connected to the device, and the modified atmosphere assembly adjusts the pressure of the device to introduce the fluid inside the device into the container.

[0012] The aforementioned packaging and storage device regulates the pressure within the device through a modified atmosphere assembly. The resulting pressure propels the food into the container and then packages it into the container, allowing the food in the device to be automatically transferred into the container.

[0013] The beneficial effects of the packaging and storage device of the present invention are as follows:

[0014] (1) The packaging and storage device of the present invention can regulate the pressure inside the device through the modified atmosphere component. The pressure generated pushes the food into the container and then packages it into the container, so that the food in the device can be automatically transferred into the container without manual movement of the device, thus improving the convenience of food preservation.

[0015] (2) The packaging and storage device of the present invention has a modified atmosphere component that generates gas that can isolate the food from contact with air in the device, reduce the possibility of the food coming into contact with air, and play a role in keeping the food fresh.

[0016] To achieve the second objective mentioned above, the present invention provides the following technical solution:

[0017] A blender is provided, comprising a cup body and the aforementioned packaging and storage device, wherein the device is the cup body;

[0018] The container is provided with at least one container and at least one dispensing port, and the at least one container is respectively connected to the at least one dispensing port.

[0019] The aforementioned blender can automatically package the food from the blender cup into multiple containers, avoiding the problem of oxidation and spoilage during juicing. It can also conveniently store the juice from the blender, avoiding waste and storage difficulties.

[0020] Modified atmosphere packaging (MAP) allows the food in the container to be isolated from the air to the greatest extent possible, effectively preserving the freshness of the juice.

[0021] In some embodiments, the cup body is equipped with a lid, and the cup body has an adjustable atmosphere vent, with the adjustable atmosphere assembly connected to the adjustable atmosphere vent.

[0022] The cup body is equipped with a lid, which serves two purposes: firstly, to protect the food inside the cup from spillage or contamination; and secondly, to create a sealed space within the cup body. This allows the modified atmosphere packaging (MAP) component to adjust the pressure within this sealed space through the MAP port, enabling the food inside the cup to quickly enter the conduit.

[0023] In some embodiments, the modified atmosphere assembly includes a vacuum pump, the vacuum pump's suction port being connected to the modified atmosphere port.

[0024] After the vacuum pump's suction port is connected to the modified atmosphere port, the vacuum pump only evacuates the sealed cup body, allowing the food inside the cup to be drawn into the conduit, thus enabling the food inside the cup to quickly enter the conduit.

[0025] In some embodiments, the modified atmosphere assembly includes an inflation bottle with its inflation port connected to the modified atmosphere port.

[0026] The inflation port of the gas cylinder is connected to the modified atmosphere port, so that the gas cylinder can concentrate the inflation of the chamber of the cup, so that the inflation can quickly push the food in the cup into the conduit.

[0027] In some embodiments, the gas in the gas cylinder is a non-toxic, odorless, inert gas.

[0028] Inert gases not only regulate pressure but also isolate air, thus preserving food.

[0029] In some embodiments, the gas in the gas cylinder is carbon dioxide.

[0030] Carbon dioxide is easily soluble in water, which allows the food in the cup to dissolve in carbon dioxide, giving the food the effect of a carbonated beverage and improving its taste.

[0031] In some embodiments, the container is connected to the cup body via a conduit (1), the dispensing port (4) is provided on the conduit (1), and the packaging bag (1) is detachably connected to the dispensing port (4).

[0032] In some implementations, a motor is included, which is used to connect to the crushing blades. The motor outputs a current value, and when the current value remains constant, it indicates that the food crushing is complete.

[0033] By varying the degree of food breakage, the resulting resistance causes different motor output current values. This allows for accurate acquisition of signals indicating the completion of food breakage, enabling timely packaging and ensuring a strong continuity between the breakage and packaging processes while maintaining freshness.

[0034] In some embodiments, the blender is provided with a storage mode and a non-storage mode. The storage mode activates the storage and processing program, while the non-storage mode does not activate the storage and processing program.

[0035] Users can choose to start the food storage program or not by selecting the storage mode and non-storage mode.

[0036] In some embodiments, the storage mode includes a vacuum storage mode and a gas-filled storage mode. In the vacuum storage mode, a vacuum pump is activated to evacuate the cup body, and in the gas-filled storage mode, a gas-filled bottle is activated to fill the cup body with gas.

[0037] In some embodiments, a placement compartment is provided on the outside of the cup body, into which the container and the modified atmosphere assembly are placed.

[0038] This placement compartment allows for a more compact placement of container components and modified atmosphere components.

[0039] The packaging bag is detachably connected to the dispensing interface, and the packaging bag can be removed directly after packaging is completed.

[0040] The beneficial effects of the blender of the present invention:

[0041] (1) A blender of the present invention can automatically package the food in the blender cup into multiple containers, avoiding the problem of oxidation and mutation of the food in the blender, and at the same time, it can conveniently store the food in the blender, avoiding the problems of food waste and inconvenience in storage.

[0042] (2) The blender of the present invention has a modified atmosphere component that can isolate the food in the cup from the air to the maximum extent, which can effectively preserve the food.

[0043] To achieve the third objective mentioned above, the present invention provides the following technical solution:

[0044] A packaging control method for a high-speed blender is provided. Using the aforementioned high-speed blender, switches are installed at each of the dispensing interfaces, and a first volume detector is installed inside the cup. The control method includes the following steps:

[0045] After the food is broken down, the first capacity detector obtains the total capacity n of the food in the cup.

[0046] Compare the total capacity n with the capacity j of a single container. If n ≥ j, calculate the number of dispensing interfaces that need to be opened and open the corresponding dispensing interfaces. If n < j, open one dispensing interface.

[0047] Activate the modified atmosphere assembly, which adjusts the pressure of the device to allow the food inside the device to be introduced into a container with an open dispensing port.

[0048] The packaging control method of the blender described above can accurately determine the number of containers needed to package all the food by calculating the relationship between the total volume of the food in the cup and the volume of a single container. This allows the dispensing interface on the container to be opened, ensuring that all food can be effectively packaged and stored. This control method is highly accurate and can effectively package the food from the blender. It is convenient and simple, enabling large-scale production.

[0049] In some implementations, the number of dispensing ports that need to be opened is calculated using a formula: q = n / j + 1, where q is the number of dispensing ports that need to be opened and q is an integer, n is the total capacity of the food, and j is the capacity of a single container.

[0050] In the above formula, q = n / j + 1, which is the number of containers allocated according to the total quantity and rounded up by one, thus ensuring the accuracy of the number of containers.

[0051] In some implementations, the step of determining whether the food has been crushed includes: detecting whether the output current value of the blender motor is constant; if it is constant, it means that the food has been crushed; otherwise, it means that the food has not been crushed.

[0052] By varying the degree of food breakage, the resulting resistance causes different motor output current values. This allows for accurate acquisition of signals indicating the completion of food breakage, enabling timely packaging and ensuring a strong continuity between the breakage and packaging processes while maintaining freshness.

[0053] In some embodiments, the blender is provided with a storage mode, which activates the blender's packaging control method.

[0054] The storage mode activates the blender's packaging control method, allowing for the packaging of food only when needed, otherwise different food is packaged, increasing the flexibility of use.

[0055] In some implementations, before opening the dispensing port, it is also included to detect whether a container is connected to the dispensing port.

[0056] Before opening the dispensing interface, it is also included to check whether the dispensing interface is connected to a container to ensure that the dispensing interface is equipped with a container and to prevent the food from spilling due to the absence of a container.

[0057] In some embodiments, the method for detecting whether the dispensing port is connected to the container includes:

[0058] A micro switch is provided on the outer wall of the dispensing interface. When the opening of the container is fitted into the outer wall of the dispensing interface, the opening of the container triggers the micro switch, so that the dispensing interface displays the container connection; otherwise, the dispensing interface does not display the container connection.

[0059] Microswitches are easy to set up and allow for real-time monitoring of the presence of containers.

[0060] In some embodiments, the dispensing interface is further provided with a second volume detector, which detects whether the volume of the corresponding container has changed. If it has changed, the switch corresponding to the container is kept open; otherwise, the switch corresponding to the container is closed.

[0061] The second capacity detector can detect the corresponding capacity changes and shut off the switch in time to ensure the preservation effect.

[0062] The beneficial effects of the packaging control method for a high-speed blender of the present invention are as follows:

[0063] The present invention discloses a packaging control method for a high-speed blender. By calculating the relationship between the total volume of the food in the cup and the volume of a single container, the method can accurately determine the number of containers required to package all the food. This allows the dispensing interface on the container to be opened, ensuring that all food can be effectively packaged and stored. This control method is highly accurate and can effectively package the food from the high-speed blender. It is convenient and simple, enabling large-scale production. Attached Figure Description

[0064] Figure 1 This is a structural schematic diagram of a blender according to a specific embodiment.

[0065] Figure 2 yes Figure 1 A magnified view of a portion of point A in the middle.

[0066] Figure 3 This is a flowchart of the packaging control method for the storage mode of a blender in a specific embodiment. Figure 1 .

[0067] Figure 4 This is a flowchart of the packaging control method for the storage mode of a blender in a specific embodiment. Figure 2 .

[0068] Figure 5 This is a flowchart illustrating the workflow of a blender in non-storage mode according to a specific embodiment.

[0069] Figure label:

[0070] 1. Packaging bag; 2. Tubing tube; 3. Cup body; 4. Liquid dispensing interface; 5. Cup lid; 6. Modified atmosphere port; 7. Vacuum pump; 8. Air extraction port; 9. Gas filling bottle; 10. Gas filling port; 11. Modified atmosphere chamber; 12. Container shell. Detailed Implementation

[0071] Preferred embodiments of the invention will now be described in more detail with reference to the accompanying drawings. While preferred embodiments of the invention are shown in the drawings, it should be understood that the invention can be implemented in various forms and should not be limited to the embodiments set forth herein. Rather, these embodiments are provided so that the invention will be thorough and complete, and will fully convey the scope of the invention to those skilled in the art.

[0072] The terminology used in this invention is for the purpose of describing particular embodiments only and is not intended to be limiting of the invention. The singular forms “a,” “the,” and “the” as used in this invention and the appended claims are also intended to include the plural forms unless the context clearly indicates otherwise. It should also be understood that the term “and / or” as used herein refers to and includes any or all possible combinations of one or more of the associated listed items.

[0073] It should be understood that although the terms "first," "second," "third," etc., may be used in this invention to describe various information, this information should not be limited to these terms. These terms are only used to distinguish information of the same type from one another. For example, without departing from the scope of this invention, first information may also be referred to as second information, and similarly, second information may also be referred to as first information. Thus, features defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this invention, "a plurality of" means two or more, unless otherwise explicitly specified.

[0074] Example 1

[0075] A high-speed blender is a food processing machine that uses ultra-high rotation speed to crush ingredients such as vegetables, fruits, nuts, and grains. When using a high-speed blender, you place fruits, vegetables, and other ingredients into the blending cup and blend to obtain juice. Currently, the juice obtained after blending needs to be consumed immediately or poured into other containers for storage. In real life, because the amount of juice produced is often too large, it is frequently not consumed immediately, leading to waste.

[0076] In response, people choose to preserve the juice, but currently they simply pour the juice out and put it back into a container. This method easily exposes the food to air, causing it to oxidize and turn brown, affecting the taste and nutrition of the food. In addition, the process of pouring out the juice is labor-intensive and the juice is easy to pour out, which is inconvenient to operate and affects the user experience of the blender.

[0077] To address the aforementioned technical issues, this embodiment discloses a packaging and storage device comprising: a container and a modified atmosphere assembly. The container is connected to the device, enabling communication between the container and the device. The device has a chamber for loading liquid food, which may include vegetables, fruits, nuts, grains, or even ingredients such as bones and ice.

[0078] The modified atmosphere assembly is connected to the device. The modified atmosphere assembly adjusts the pressure of the device to guide the food inside the device into the container. Specifically, the modified atmosphere assembly adjusts the pressure of the device by inflating the chamber of the device with air, thereby increasing the pressure inside the chamber and pushing the food inside the chamber into the conduit 2, thus guiding the food inside the device into the container. Alternatively, the modified atmosphere assembly can evacuate the chamber of the device, creating a negative pressure inside the chamber. Under the action of this negative pressure, the food inside the chamber enters the conduit 2, thus guiding the food inside the device into the container.

[0079] Multiple containers can be provided, allowing the food inside the device cavity to be packaged into multiple containers.

[0080] The aforementioned packaging and storage device can regulate the pressure within the device via a modified atmosphere packaging (MAP) component. The resulting pressure propels the food through the feeding conduit 2 and into the container, automatically transferring the food from the device into the container without manual movement, thus improving the convenience of food preservation. The gas generated by the MAP component isolates the food from air within the device, reducing the likelihood of contact and preserving the food's freshness.

[0081] Example 2

[0082] The blender disclosed in this embodiment, Figures 1-2 As shown, it includes a cup body 3 and a packaging and storage device. The packaging and storage device includes a container and a modified atmosphere assembly. The container is connected to the cup body 3 of the blender through a conduit 2. In practical applications, the container can also be connected to the cup body 3 in other ways. The cup body 3 is the working position for crushing materials because the cup body 3 is loaded with liquid food, which can be vegetables, fruits, nuts, grains, or even ingredients such as bones and ice.

[0083] At least one of the containers is provided. A dispensing port is provided on the cup body, and each container is connected to a corresponding dispensing port 4. In use, the fluid inside the cup is transferred to the container.

[0084] Example 3

[0085] The blender disclosed in this embodiment, Figures 1-2 As shown, it includes a cup body 3 and a packaging and storage device. The packaging and storage device includes a container and a modified atmosphere assembly. The container is connected to the cup body 3 of the blender through a conduit 2. The cup body 3 is the working position for crushing materials. Since the cup body 3 is loaded with liquid food, these foods can be vegetables, fruits, nuts, grains, or even ingredients such as bones and ice.

[0086] The device is equipped with at least two containers, allowing for rapid dispensing and packaging. Users can consume the contents of each container multiple times as needed, further enhancing the convenience of food preparation. The conduit 2 has at least two dispensing ports 4, with each of the at least two containers connected to one of these ports. This one-to-one correspondence between containers and dispensing ports 4 provides connection points for at least two containers, enabling them to be connected to a single conduit 2. Consequently, the contents of the cup 3 can be simultaneously packaged into the corresponding containers, improving packaging convenience.

[0087] The section of the aforementioned conduit 2 that extends into the cup body 3 is flat and close to the inner wall of the cup body 3. The conduit 2 can be divided into multiple sections, and the sections located inside the cup body 3 can be connected to other sections using sealing rings, facilitating the replacement of some sections.

[0088] Figures 1-2 As shown, the cup body 3 is equipped with a cup lid 5, and the cup body 3 has an adjusted atmosphere port 6, and the adjusted atmosphere component is connected to the adjusted atmosphere port 6.

[0089] The cup body 3 is equipped with a lid 5. The lid 5 protects the food inside the cup body 3 from spillage or contamination. On the other hand, it creates a sealed space in the cup body 3, allowing the modified atmosphere assembly to adjust the pressure of the cup body 3 within this sealed space through the modified atmosphere port 6, so that the food inside the cup body 3 can quickly enter the conduit 2.

[0090] Figures 1-2 As shown, the modified atmosphere assembly includes a vacuum pump 7, and the suction port 8 of the vacuum pump 7 is connected to the modified atmosphere port 6.

[0091] After the vacuum pump 7's suction port 8 is connected to the modified atmosphere port 6, the vacuum pump 7 only draws a vacuum on the sealed cup body 3, so that the food in the cup body 3 can be drawn into the conduit 2, and the food in the cup body 3 can quickly enter the conduit 2.

[0092] Example 4

[0093] For ease of understanding, the following provides an embodiment of a blender. The difference between this embodiment and Embodiment 3 is that... Figures 1-2 As shown, the modified atmosphere assembly can also be an air cylinder 9, and the air inlet 10 of the air cylinder 9 is connected to the modified atmosphere port 6.

[0094] The inflation port 10 of the inflation bottle 9 is connected to the modified atmosphere port 6, so that the inflation bottle 9 can concentrate the inflation of the chamber of the cup body 3, so that the inflation can quickly push the food in the cup body 3 into the conduit 2.

[0095] Figures 1-2As shown, the gas inside the gas cylinder 9 is an inert gas. The inert gas not only regulates pressure but also isolates the food from air, thus preserving its freshness. Preferably, the inert gas is carbon dioxide, which is readily soluble in water. This allows the food inside the cup 3 to dissolve in carbon dioxide, giving it the effect of a carbonated beverage and improving its taste.

[0096] Of course, the inert gas can be any other gas, as long as it does not contaminate the food inside the cup 3.

[0097] Example 5

[0098] The blender disclosed in this embodiment, Figures 1-2 As shown, it includes a cup body 3 and a packaging and storage device. The packaging and storage device includes a container and a modified atmosphere assembly. The container is connected to the cup body 3 of the blender through a conduit 2. The cup body 3 is the working position for crushing materials. Since the cup body 3 is loaded with liquid food, these foods can be vegetables, fruits, nuts, grains, or even ingredients such as bones and ice.

[0099] The device is equipped with at least two containers, allowing for rapid dispensing and packaging. Users can consume the contents of each container multiple times as needed, further enhancing the convenience of food preparation. The conduit 2 has at least two dispensing ports 4, with each of the at least two containers connected to one of these ports. This one-to-one correspondence between containers and dispensing ports 4 provides connection points for at least two containers, enabling them to be connected to a single conduit 2. Consequently, the contents of the cup 3 can be simultaneously packaged into the corresponding containers, improving packaging convenience.

[0100] Figures 1-2 As shown, the container is a packaging bag 1, which is detachably connected to the dispensing interface 4. Once packaging is complete, the packaging bag 1 can be directly removed.

[0101] The container is a packaging bag 1, eliminating the need to wash the cup and improving ease of use. Specifically, the packaging bag 1 is a disposable packaging bag 1, further enhancing ease of use. Furthermore, since the packaging bag 1 is detachably connected to the dispensing interface 4, after cooking and packaging, the packaging bag 1 can be directly removed without disassembling too many parts, further improving ease of use.

[0102] Example 6

[0103] The blender disclosed in this embodiment, Figures 1-2As shown, it includes a cup body 3 and a packaging and storage device. The packaging and storage device includes a container and a modified atmosphere assembly. The container is connected to the cup body 3 of the blender through a conduit 2. The cup body 3 is the working position for crushing materials. Since the cup body 3 is loaded with liquid food, these foods can be vegetables, fruits, nuts, grains, or even ingredients such as bones and ice.

[0104] The device is equipped with at least two containers, allowing for rapid dispensing and packaging. Users can consume the contents of each container multiple times as needed, further enhancing the convenience of food preparation. The conduit 2 has at least two dispensing ports 4, with each of the at least two containers connected to one of these ports. This one-to-one correspondence between containers and dispensing ports 4 provides connection points for at least two containers, enabling them to be connected to a single conduit 2. Consequently, the contents of the cup 3 can be simultaneously packaged into the corresponding containers, improving packaging convenience.

[0105] More specifically, a receiving shell is provided on the outer side of the cup body 3, and the container is placed inside the receiving shell. The receiving shell covers the modified atmosphere port 6, and the receiving shell and the outer side of the cup body 3 form a sealed space, in which the modified atmosphere port 6 is also located. One end of the conduit 2 is inserted into the cup body 3, and the other end extends into the receiving shell and connects to the various containers inside the receiving shell. Because the receiving shell is sealed and covers the modified atmosphere port 6, the receiving cavity is connected to the modified atmosphere port 6, and therefore the modified atmosphere assembly can connect to the modified atmosphere port 6 without additional piping. In use, the modified atmosphere assembly applies airflow to the receiving cavity, which directly acts on the cup body 3, making the entire blender structure compact. At the same time, the receiving shell provides a mounting position for the container, further improving the compactness of the blender structure.

[0106] Furthermore, the top part of the housing is set as the modified atmosphere chamber 11. The modified atmosphere chamber 11 is sealed. The housing is only sealed to the modified atmosphere port 6 through the cavity of the modified atmosphere chamber 11. The modified atmosphere assembly is connected to the modified atmosphere port 6 through the modified atmosphere chamber 11. At this time, the container inside the housing is separated from the modified atmosphere chamber 11, which improves the efficiency of modified atmosphere and prevents the contaminants inside the housing from entering the material in the cup body 3. At the same time, it makes the whole structure compact and efficient.

[0107] Example 7

[0108] The packaging control method for a high-speed blender disclosed in this embodiment... Figures 1-4 As shown, the blender includes a cup body 3 and a packaging and storage device. The packaging and storage device includes a container and a modified atmosphere assembly. The container is connected to the cup body 3 of the blender via a conduit 2. The cup body 3 is the working position for crushing materials. The cup body 3 is filled with liquid food, which can be vegetables, fruits, nuts, grains, or even ingredients such as bones and ice.

[0109] A switch is provided at each of the dispensing ports 4, that is, each dispensing port 4 has one dispensing port 4. The switch is used to control the opening or closing state of the dispensing port 4 to control the quantity of packaging. A first volume detector is provided inside the cup body 3. The first volume detector is used to detect the volume. The first volume detector can be a liquid level detector. By detecting the liquid level in the container, the volume of food in the container can be determined. Preferably, the liquid level detector is located at the top of the cup body 3, so that the volume of food in the cup body 3 can be obtained accurately and quickly.

[0110] Based on the above structure, the packaging control method for a high-speed blender includes the following steps:

[0111] After the food is broken up, the first capacity detector obtains the total capacity n of the food in the cup 3; based on the signal that the food has been broken up, the first capacity detector determines the total capacity n of the food.

[0112] Compare the total capacity n with the capacity j of a single container. If n ≥ j, it means that a single container cannot hold all the food and more containers are needed. Then calculate the number of dispensing interfaces 4 that need to be opened and open the dispensing interfaces 4 accordingly. This allows the number of containers to be selected based on the total amount of food. This way, the food can be dispensed better without wasting containers, thus achieving the effect of saving.

[0113] If n < j, it means that the total capacity of the food is less than one container, and in this case, a dispensing interface 4 is opened;

[0114] Activate the modified atmosphere assembly, which adjusts the pressure of the device to allow the food inside the device to be introduced into the container opened by the dispensing port 4.

[0115] The packaging control method of the blender described above can accurately determine the number of containers required to package all the food by calculating the relationship between the total volume of the food in the cup 3 and the volume of a single container. This allows the dispensing interface 4 on the container to be opened, ensuring that all food can be effectively packaged and stored. This control method is highly accurate and can effectively package the food from the blender. It is convenient and simple, enabling large-scale production.

[0116] Example 8

[0117] The packaging control method for a high-speed blender disclosed in this embodiment... Figures 1-4 As shown, the blender includes a cup body 3 and a packaging and storage device. The packaging and storage device includes a container and a modified atmosphere assembly. The container is connected to the cup body 3 of the blender via a conduit 2. The cup body 3 is the working position for crushing materials. The cup body 3 is filled with liquid food, which can be vegetables, fruits, nuts, grains, or even ingredients such as bones and ice.

[0118] A switch is provided at each of the dispensing ports 4, that is, each dispensing port 4 has one dispensing port 4. The switch is used to control the opening or closing state of the dispensing port 4 to control the quantity of packaging. A first volume detector is provided inside the cup body 3. The first volume detector is used to detect the volume. The first volume detector can be a liquid level detector. By detecting the liquid level in the container, the volume of food in the container can be determined. Preferably, the liquid level detector is located at the top of the cup body 3, so that the volume of food in the cup body 3 can be obtained accurately and quickly.

[0119] Based on the above structure, the packaging control method for a high-speed blender includes the following steps:

[0120] After the food is broken up, the first capacity detector obtains the total capacity n of the food in the cup 3; based on the signal that the food has been broken up, the first capacity detector determines the total capacity n of the food.

[0121] Compare the total capacity n with the capacity j of a single container. If n ≥ j, it means that a single container cannot hold all the food and more containers are needed. Then calculate the number of dispensing interfaces 4 that need to be opened and open the dispensing interfaces 4 accordingly. This allows the number of containers to be selected based on the total amount of food. This way, the food can be dispensed better without wasting containers, thus achieving the effect of saving.

[0122] The number of dispensing ports 4 that need to be opened is calculated using the formula: q = n / j + 1, where q is the number of dispensing ports 4 that need to be opened (q is an integer), n is the total processing capacity, and j is the capacity of a single container. In the above formula, q = n / j + 1 ensures the accuracy of the container quantity by allocating the number of containers according to the total quantity and rounding down by one.

[0123] If n < j, it means that the total capacity of the food is less than one container, and in this case, a dispensing interface 4 is opened;

[0124] Activate the modified atmosphere assembly, which adjusts the pressure of the device to allow the food inside the device to be introduced into the container opened by the dispensing port 4.

[0125] Example 9

[0126] The packaging control method for a high-speed blender disclosed in this embodiment... Figures 1-4 As shown in this embodiment, the packaging control method of the blender includes a cup body 3 and a packaging and storage device. The packaging and storage device includes a container and a modified atmosphere assembly. The container is connected to the cup body 3 of the blender through a conduit 2. The cup body 3 is the working position for crushing materials. The cup body 3 is loaded with liquid food, which can be vegetables, fruits, nuts, grains, or even ingredients such as bones and ice.

[0127] A switch is provided at each of the dispensing ports 4, that is, each dispensing port 4 has one dispensing port 4. The switch is used to control the opening or closing state of the dispensing port 4 to control the quantity of packaging. A first volume detector is provided inside the cup body 3. The first volume detector is used to detect the volume. The first volume detector can be a liquid level detector. By detecting the liquid level in the container, the volume of food in the container can be determined. Preferably, the liquid level detector is located at the top of the cup body 3, so that the volume of food in the cup body 3 can be obtained accurately and quickly.

[0128] Based on the above structure, the packaging control method for a high-speed blender includes the following steps:

[0129] After the food is broken up, the first capacity detector obtains the total capacity n of the food in the cup 3; based on the signal that the food has been broken up, the first capacity detector determines the total capacity n of the food.

[0130] Compare the total capacity n with the capacity j of a single container. If n ≥ j, it means that a single container cannot hold all the food and more containers are needed. Then calculate the number of dispensing interfaces 4 that need to be opened and open the dispensing interfaces 4 accordingly. This allows the number of containers to be selected based on the total amount of food. This way, the food can be dispensed better without wasting containers, thus achieving the effect of saving.

[0131] In this embodiment, the step of determining whether the food has been crushed includes: detecting whether the output current value of the blender motor is constant. If it is constant, it means that the food has been crushed; otherwise, it means that the food has not been crushed.

[0132] Different degrees of food fineness result in varying resistance, leading to different motor output currents and consequently, different motor torques. When the food reaches a certain fineness, the motor's output current remains constant. By detecting this constant current, the blender can automatically and accurately determine if the food has reached the required fineness level and then issue a signal indicating that the food has been properly fined. This allows for accurate acquisition of the completion signal and timely packaging, ensuring a smooth transition between the fineness and packaging processes and maintaining optimal freshness.

[0133] Example 10

[0134] The packaging control method for a high-speed blender disclosed in this embodiment... Figures 1-4 As shown in this embodiment, the packaging control method of the blender includes a cup body 3 and a packaging and storage device. The packaging and storage device includes a container and a modified atmosphere assembly. The container is connected to the cup body 3 of the blender through a conduit 2. The cup body 3 is the working position for crushing materials. The cup body 3 is loaded with liquid food, which can be vegetables, fruits, nuts, grains, or even ingredients such as bones and ice.

[0135] A switch is provided at each of the dispensing ports 4, that is, each dispensing port 4 has one dispensing port 4. The switch is used to control the opening or closing state of the dispensing port 4 to control the quantity of packaging. A first volume detector is provided inside the cup body 3. The first volume detector is used to detect the volume. The first volume detector can be a liquid level detector. By detecting the liquid level in the container, the volume of food in the container can be determined. Preferably, the liquid level detector is located at the top of the cup body 3, so that the volume of food in the cup body 3 can be obtained accurately and quickly.

[0136] Based on the above structure, the packaging control method for a high-speed blender includes the following steps:

[0137] After the food is broken up, the first capacity detector obtains the total capacity n of the food in the cup 3; based on the signal that the food has been broken up, the first capacity detector determines the total capacity n of the food.

[0138] Compare the total capacity n with the capacity j of a single container. If n ≥ j, it means that a single container cannot hold all the food and more containers are needed. Then calculate the number of dispensing interfaces 4 that need to be opened and open the dispensing interfaces 4 accordingly. This allows the number of containers to be selected based on the total amount of food. This way, the food can be dispensed better without wasting containers, thus achieving the effect of saving.

[0139] The blender features a storage mode, accessible via a button on the blender body. This storage mode activates the blender's packaging control, allowing for the selection of the appropriate packaged food when needed, thus increasing flexibility. Alternatively, additional settings can be configured on the blender. Figure 5 The non-storage mode shown can also be selected by the user, thus preventing the food from being automatically packaged.

[0140] More specifically, storage modes are further divided into, for example... Figure 3 The inflation mode shown and Figure 4 The vacuum mode shown refers to the modified atmosphere module directly inflating the cup body 3, causing the gas to propel the food through the conduit 2. The vacuum mode, on the other hand, refers to the modified atmosphere module directly creating a vacuum in the cup body 3, causing the gas to propel the food through the conduit 2.

[0141] Example 11

[0142] The packaging control method for a high-speed blender disclosed in this embodiment... Figures 1-4As shown in this embodiment, the packaging control method of the blender includes a cup body 3 and a packaging and storage device. The packaging and storage device includes a container and a modified atmosphere assembly. The container is connected to the cup body 3 of the blender through a conduit 2. The cup body 3 is the working position for crushing materials. The cup body 3 is loaded with liquid food, which can be vegetables, fruits, nuts, grains, or even ingredients such as bones and ice.

[0143] A switch is provided at each of the dispensing ports 4, that is, each dispensing port 4 has one dispensing port 4. The switch is used to control the opening or closing state of the dispensing port 4 to control the quantity of packaging. A first volume detector is provided inside the cup body 3. The first volume detector is used to detect the volume. The first volume detector can be a liquid level detector. By detecting the liquid level in the container, the volume of food in the container can be determined. Preferably, the liquid level detector is located at the top of the cup body 3, so that the volume of food in the cup body 3 can be obtained accurately and quickly.

[0144] Based on the above structure, the packaging control method for a high-speed blender includes the following steps:

[0145] After the food is broken up, the first capacity detector obtains the total capacity n of the food in the cup 3; based on the signal that the food has been broken up, the first capacity detector determines the total capacity n of the food.

[0146] Compare the total capacity n with the capacity j of a single container. If n ≥ j, it means that a single container cannot hold all the food and more containers are needed. Then calculate the number of dispensing interfaces 4 that need to be opened and open the dispensing interfaces 4 accordingly. This allows the number of containers to be selected based on the total amount of food. This way, the food can be dispensed better without wasting containers, thus achieving the effect of saving.

[0147] In this embodiment, before opening the liquid dispensing interface 4, it is also included to detect whether the liquid dispensing interface 4 is connected to a container, so as to ensure that the liquid dispensing interface 4 is equipped with a container and to prevent the problem of food spillage due to the absence of a container.

[0148] In this embodiment, the method for detecting whether the liquid dispensing interface 4 is connected to the container includes:

[0149] A microswitch is installed on the outer wall of the dispensing interface 4. When the opening of the container is fitted onto the outer wall of the dispensing interface 4, the opening of the container triggers the microswitch, causing the dispensing interface 4 to display information indicating that the container is connected. Otherwise, the dispensing interface 4 does not display information indicating that the container is connected. The microswitch is simple to set up and allows for easy real-time monitoring of whether a container is present.

[0150] In this embodiment, the liquid dispensing interface 4 is also provided with a second volume detector, which can also be a liquid level sensor. The second volume detector detects whether the volume of the corresponding container changes. If it changes, the switch corresponding to the container is kept open; otherwise, the switch corresponding to the container is closed. The second volume detector can detect the corresponding volume change and close the switch in time to ensure the preservation effect. The switch can be a solenoid valve.

[0151] Example 12

[0152] For ease of understanding, the following is an example of a packaging control method for a blender. In practical applications, the storage capacity of each container can also be set according to needs. That is, the timing of the switch being turned off is controlled according to the storage capacity of each container. This allows users to control the storage capacity of each container according to their individual drinking needs, making it more in line with each person's drinking habits and preventing food waste.

[0153] Example 13

[0154] For ease of understanding, an embodiment of the packaging control method for a blender is provided below. In practical applications, the conduit 2 can also be connected to an additional vacuum device to first evacuate the container before introducing the food, further enhancing its preservation effect. Unless otherwise specifically stated, the relative arrangement, numerical expressions, and values ​​of the components and steps described in these embodiments do not limit the scope of this application. It should also be understood that, for ease of description, the dimensions of the various parts shown in the accompanying drawings are not drawn to actual scale. Techniques, methods, and devices known to those skilled in the art may not be discussed in detail, but where appropriate, such techniques, methods, and devices should be considered part of the specification. In all examples shown and discussed herein, any specific values ​​should be interpreted as merely exemplary and not as limitations. Therefore, other examples of exemplary embodiments may have different values. It should be noted that similar reference numerals and letters in the following figures denote similar items; therefore, once an item is defined in one figure, it does not need to be further discussed in subsequent figures.

[0155] In the description of this application, it should be understood that the orientation or positional relationship indicated by directional terms such as "front, back, up, down, left, right", "horizontal, vertical, horizontal" and "top, bottom" is usually based on the orientation or positional relationship shown in the accompanying drawings, and is only for the convenience of describing this application and simplifying the description. Unless otherwise stated, these directional terms do not indicate or imply that the device or element referred to must have a specific orientation or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation on the scope of protection of this application; the directional terms "inner" and "outer" refer to the inner and outer contours relative to the outline of each component itself.

[0156] For ease of description, spatial relative terms such as "above," "on top of," "on the upper surface of," "above," etc., are used herein to describe the spatial positional relationship of a device or feature as shown in the figures to other devices or features. It should be understood that spatial relative terms are intended to encompass different orientations in use or operation beyond the orientation of the device as described in the figures. For example, if the device in the figures were inverted, a device described as "above" or "on top of" other devices or structures would subsequently be positioned as "below" or "under" other devices or structures. Thus, the exemplary term "above" can include both "above" and "below." The device may also be positioned in other different ways (rotated 90 degrees or in other orientations), and the spatial relative descriptions used herein will be interpreted accordingly.

[0157] Furthermore, it should be noted that the use of terms such as "first" and "second" to define components is merely for the purpose of distinguishing the corresponding components. Unless otherwise stated, the above terms have no special meaning and therefore cannot be construed as limiting the scope of protection of this application.

[0158] The above description is merely a preferred embodiment of the present invention and is not intended to limit the invention. Various modifications and variations can be made to the present invention by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the scope of protection of the present invention.

Claims

1. A method of packaging control of a cell disrupter, characterized by, A wall breaking machine, comprising a cup (3) and a package storage device, the package storage device comprising a container connected with the device; An air adjusting assembly, which is communicated with the device, and which guides the fluid food in the device into the container by adjusting the pressure of the device; The device is the cup (3); At least one container and at least one distribution interface (4) are provided, and the at least one container is connected with the at least one distribution interface (4) respectively; The container is provided with at least two, and a switch is provided at each distribution interface (4), a first volume detector is provided in the cup (3), and the control method comprises the following steps: After the food is broken, the first volume detector obtains the total volume n of the food in the cup (3); The total volume n is compared with the volume j of a single container, if n≥j, the number of distribution interfaces (4) to be opened is calculated and the distribution interfaces (4) are opened correspondingly, if n The air adjusting assembly is started, and the air adjusting assembly adjusts the pressure of the device to guide the food in the device into the container with the opened distribution interface (4).

2. The packaging control method of the wall breaking machine according to claim 1, characterized in that, The number of distribution interfaces (4) to be opened is calculated by a formula: q=n / j+1, wherein q is the number of distribution interfaces (4) to be opened and q is an integer, n is the total volume of the food, and j is the volume of a single container.

3. The packaging control method of the wall breaking machine according to claim 2, characterized in that, The judgment step of completing the breaking of the food comprises: detecting whether the output current value of the wall breaking machine motor is constant, if yes, it indicates that the breaking of the food is completed, otherwise, it indicates that the breaking of the food is not completed.

4. The packaging control method of the wall breaking machine according to claim 3, wherein, Before the distribution interface (4) is opened, the step of detecting whether the container is connected with the distribution interface (4) is further included.

5. The packaging control method of the wall breaking machine according to claim 4, wherein, The step of detecting whether the container is connected with the distribution interface (4) comprises: A micro switch is arranged on the outer wall of the distribution interface (4), when the opening of the container is sleeved on the outer wall of the distribution interface (4), the opening of the container triggers the micro switch to output display information that the container is connected with the distribution interface (4), otherwise, display information that the container is not connected with the distribution interface (4) is outputted.

6. The packaging control method of the wall breaking machine according to claim 5, wherein, The distribution interface (4) is further provided with a second volume detector, the second volume detector detects whether the volume of the corresponding container changes, if yes, the switch corresponding to the container is kept open, otherwise, the switch corresponding to the container is closed.

7. The packaging control method of the wall breaking machine according to claim 6, wherein, The cup (3) is provided with a cup cover (5), the cup (3) is provided with an air adjusting port (6), and the air adjusting assembly is connected with the air adjusting port (6).

8. The packaging control method of the wall breaking machine according to claim 7, wherein, The air adjusting assembly comprises a vacuum pump (7), and the air outlet (8) of the vacuum pump (7) is connected with the air adjusting port (6).

9. The packaging control method of the wall breaking machine according to claim 8, wherein, The air adjusting assembly comprises a gas charging bottle (9), and the gas inlet (10) of the gas charging bottle (9) is connected with the air adjusting port (6).

10. The packaging control method of the wall breaking machine according to claim 9, wherein, The gas in the gas charging bottle (9) is a non-toxic, odorless and inert gas.

11. The packaging control method of the wall breaking machine according to claim 10, wherein, The inert gas is carbon dioxide.

12. The packaging control method of the wall breaking machine according to claim 11, wherein, The container is a package bag (1), the container is connected with the cup through a conduit (2), the distribution interface (4) is arranged on the conduit (2), and the package bag (1) is detachably connected with the distribution interface (4).

13. The packaging control method of the wall breaking machine according to claim 12, wherein, The motor is used to connect the cutter for crushing, and the motor output current value indicates that the food crushing is completed when the current value is constant.

14. The packaging control method of the wall breaking machine according to claim 13, wherein, The wall breaking machine is provided with a storage mode and a non-storage mode, the storage mode starts the food storage program after the food crushing is completed, and the non-storage mode does not start the food storage program after the food crushing is completed.

15. The packaging control method of the wall breaking machine according to claim 14, wherein, The storage mode includes a vacuum storage mode and a gas storage mode, the vacuum storage mode starts the vacuum pump to vacuumize the cup, and the gas storage mode starts the gas bottle to aerate the cup.

16. The packaging control method of the wall breaking machine according to claim 15, wherein, The outside of the cup is provided with a placing bin, and the container and the gas adjusting assembly are placed in the placing bin.

Citation Information

Patent Citations

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    CN203219897U