Vacuum cooking container and vacuum low-temperature cooking device
The vacuum cooking container with a differential pressure-controlled exhaust system and contact unit addresses nutrient loss and odor issues in traditional cooking, achieving effective nutrient preservation and aroma retention through low-temperature vacuum cooking.
Patent Information
- Application Number
- JP2023521140
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-10-12
- Filing Date
- 2021-10-08
- Publication Date
- 2025-08-08
- Estimated Expiration
- 2041-10-08
AI Technical Summary
Traditional high-temperature cooking methods lead to nutrient loss, texture changes, and unpleasant odors in food, while existing vacuum cooking devices like sous-vide require specialized equipment and can amplify unpleasant smells.
A vacuum cooking container with a differential pressure-controlled exhaust system and a contact unit to maintain consistent vacuum pressure, combined with a heating device that allows low-temperature cooking and steam discharge, ensuring nutrient preservation and aroma retention.
The solution effectively preserves nutrients and moisture, maintains food texture, and reduces unpleasant odors during low-temperature vacuum cooking, without the need for specialized sous-vide equipment.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a technology for cooking food ingredients at low temperatures under a vacuum in which a negative pressure lower than atmospheric pressure is applied, and relates to a vacuum cooking container and a vacuum low-temperature cooking device that can maximize the preservation of nutrients and moisture in food ingredients and cook food in a state that allows the enjoyment of excellent texture, taste, and aroma. [Background technology]
[0002] In the traditional cooking method of cooking food ingredients at high temperatures of 100°C or higher under atmospheric pressure (1 atmosphere), the following problems arise depending on the type of food ingredient.
[0003] For example, when meat is cooked at high temperatures, such as by grilling or boiling, it becomes tough and hard, shrinks in size, and loses its juices. Specifically, when boiled in water, vitamins such as thiamine (vitamin B1) and niacin (vitamin B3) and minerals are released into the water in large quantities. When grilled, nutrients (such as vitamins) are lost and carcinogens may be produced. Heat can particularly denature protein, one of the five major nutrients found in meat. As is well known, food proteins exist in the form of a strip-like primary structure, alpha-helical and beta-sheet secondary structures, tertiary structures formed by the interaction of multiple secondary structures to form a unique three-dimensional shape, and quaternary structures. These structures are denatured at temperatures between 60 and 70°C.
[0004] In the case of vegetables, when they are boiled in water, nearly half of the water-soluble vitamins dissolve in the water, and they lose their ability to remove active oxygen.
[0005] Therefore, vacuum low-temperature cooking has emerged as a solution to solve the problems associated with high-temperature cooking, and active development is underway on cooking devices that can effectively perform this vacuum low-temperature cooking method.
[0006] As an example of a vacuum low-temperature cooking method, the sous-vide cooking method involves storing food ingredients in a plastic bag, removing the air from the bag, sealing it under a vacuum, and then placing the plastic bag in a water bath where the water temperature is maintained at a specified temperature (50-65°C) for a specified period of time (for example, from several tens of minutes to a maximum of 72 hours), thereby cooking the food ingredients over a long period of time at a temperature that does not denature the proteins.
[0007] Therefore, to cook food using the sous vide method, you need a vacuum packaging machine and specialized sous vide equipment, which typically includes a water bath, temperature sensor, water circulator, heater, timer, etc.
[0008] The reason for vacuum-packing food ingredients in sous vide cooking is that if the ingredients are placed in water without packaging, the food's inherent aroma and nutrients will escape into the water, and cooking at low temperatures for long periods of time can cause problems such as bacterial growth.
[0009] Another disadvantage of sous vide cooking is that because the food is cooked in a completely sealed state, unpleasant odors such as greasy or fishy smells cannot be completely removed, and the vacuum packaging tends to amplify the unpleasant odors of the food.
[0010] On the other hand, the applicant conducted a simple search of patent documents and other materials and was unable to find any materials disclosing technology similar to the present invention. However, the applicant found the following Patent Documents 1 and 2 as reference materials, which will be briefly introduced here.
[0011] Patent Document 1 discloses a vacuum cooker that can both cook and store food, and that is configured to include an inner case that forms a cooking chamber; a heater for cooking food contained in the cooking chamber; an outer case that is installed a predetermined distance away from the inner case; an insulated space that is formed between the inner case and the outer case; a vacuum pump that reduces the pressure in the cooking chamber and the insulated space; a first vacuum valve that controls communication between the cooking chamber and the vacuum pump; a second vacuum valve that controls communication between the insulated space and the vacuum pump; a first intake valve that controls communication between the cooking chamber and outside air; a second intake valve that controls communication between the insulated space and outside air; and a support that supports the inner case and outer case.
[0012] Patent Document 2 discloses a sous vide cooking device comprising: a housing in which a container mounting section and a vacuum packaging module mounting section are arranged adjacent to each other; a first container connected to the container mounting section and having a fluid storage space formed therein; a heating section that heats the fluid in the fluid storage space of the first container; a vacuum pressure generating section that is installed in the vacuum packaging module mounting section and sucks in air from inside the food packaging container; and a vacuum packaging module that is installed near the vacuum pressure generating section and has a sealing and heating section that heats and seals the food packaging container. [Prior art documents] [Patent documents]
[0013] [Patent Document 1] Korean Patent Publication No. 10-2005-0031287 [Patent Document 2] Korean Patent Registration No. 10-1885870 Summary of the Invention [Problem to be solved by the invention]
[0014] The vacuum cooking container according to the present invention comprises a cylindrical container body with an open top and a lid for opening and closing the open top of the container body.
[0015] The container body and the lid may be fitted together, or one side of the lid may be hinged to one side of the container body and the other side of the lid may be fastened or unlocked to the other side of the container body by a locking means such as a hook, or both sides of the lid may be fastened or unlocked by locking means provided on both sides of the container body. In other words, the method of fastening (opening and closing) the lid to the container body is not particularly limited.
[0016] According to one embodiment of the present invention, the container body is provided with an exhaust unit in a portion of the side wall that connects the inside and outside of the container body. The exhaust unit includes a nozzle that is attached to a through-hole formed in a portion of the side wall of the container body from the outer surface of the side wall, a clamping plate that is fixed to the inner surface of the side wall of the container body and has an exhaust guide hole drilled in a portion corresponding to the nozzle, and a membrane that is sandwiched and fixed between the inner surface of the side wall of the container body and the clamping plate and has a communication hole drilled in a portion corresponding to the nozzle with a diameter smaller than that of the flow path of the nozzle.
[0017] In the present invention, the membrane is made of a thin film or sheet of a material such as synthetic resin or elastomer (elastic plastic). Therefore, when food is cooked in a vacuum at low temperature, the diameter of the communicating holes changes depending on the magnitude of the differential pressure between the internal pressure of the vacuum cooking container and the external pressure (vacuum pressure) surrounding the vacuum cooking container, which changes from moment to moment.
[0018] When the differential pressure is zero or below a predetermined value, the diameter of the communicating hole does not change. In this specification, the diameter of the communicating hole at this time is referred to as the "reference diameter." When the differential pressure exceeds a predetermined value, the diameter of the communicating hole gradually increases in proportion to the magnitude of the differential pressure. In this specification, the upper limit of the diameter at which the communicating hole will not be destroyed is referred to as the "maximum diameter." In addition, in this specification, the diameter of the communicating hole when it varies depending on the magnitude of the differential pressure within the range between the reference diameter and the maximum diameter is referred to as the "variable diameter."
[0019] The vacuum cooking container of the present invention is configured in such a way that when the lid is attached to the open top of the container body, steam is discharged from the inside of the vacuum cooking container to the outside only through the flow path of the exhaust unit (flow passage + communication hole + exhaust guide hole), and the parts other than the flow path of the exhaust unit are kept airtight.
[0020] Next, the vacuum low-temperature cooking device of the present invention is structured so that one or more heating plates equipped with heaters (heating elements) are installed in a vacuum cooking chamber, and one or more vacuum cooking containers are placed on the top surface of the heating plates.When food ingredients are placed in the vacuum cooking container together with liquid such as water or sauce (seasoning), a vacuum pump is driven to apply negative pressure (vacuum pressure) to the vacuum cooking chamber, and when power is supplied to the heater, the temperature of the vacuum cooking container rises due to heat transfer from the heating plate equipped with the heater.
[0021] Therefore, as the temperature of the vacuum cooking container rises, the liquid (water) inside the vacuum cooking container changes phase to steam at a temperature significantly lower than 100°C (the boiling point at atmospheric pressure) and its volume expands. As a result, the internal pressure of the vacuum cooking container becomes higher than the vacuum pressure in the vacuum cooking chamber but lower than atmospheric pressure, and the food ingredients inside the vacuum cooking container are cooked in a vacuum at a low temperature.
[0022] On the other hand, when vacuum pressure is applied to the vacuum cooking chamber, the vacuum cooking container placed on the top surface of the heating plate floats, and in this case, the heat from the heater is not transferred to the vacuum cooking container, or less heat than intended is transferred.
[0023] Therefore, the vacuum low-temperature cooking device according to the present invention is provided with a contact unit that seals the vacuum cooking container against the top surface of the heating plate when vacuum pressure is applied to the vacuum cooking chamber so that no gap occurs between the vacuum cooking container and the heating plate. An airbag will be mentioned as an example of the contact unit in the following examples, but this is not limiting. The contact unit may be completely fixed to the vacuum low-temperature cooking device, or may have a detachable structure that can be separated as needed. Furthermore, the contact unit is preferably disposed above the lid of the vacuum cooking container at a predetermined distance from the lid.
[0024] In the vacuum low-temperature cooking device of the present invention, when steam is generated from the food ingredients or liquid contained in the vacuum cooking container and the internal pressure of the vacuum cooking container increases, steam is exhausted from the inside of the vacuum cooking container to the vacuum cooking chamber through a flow path in the exhaust unit provided on the side wall of the vacuum cooking container body so that the differential pressure between the internal pressure of the vacuum cooking container and the vacuum pressure applied to the vacuum cooking chamber is maintained within a predetermined range or the differential pressure gradually decreases, and the inside of the vacuum cooking chamber is periodically or continuously exhausted to maintain a constant vacuum pressure in the vacuum cooking chamber.
[0025] The vacuum low-temperature cooking apparatus according to the present invention may be provided with a vacuum gauge for detecting the pressure inside the vacuum cooking chamber and a temperature gauge for detecting the temperature of the heating plate.
[0026] In addition, the vacuum low-temperature cooking device according to the present invention is characterized in that an uneven pattern is formed on the inner surface of the vacuum cooking container that comes into contact with the food material so that grill marks or the like can be left on the surface of the food material during the cooking process.
[0027] In addition, the vacuum low-temperature cooking device of the present invention may be equipped with a flavor enhancement unit that can heat snack ingredients for a relatively short time (several tens of seconds to 10 minutes) before consuming the food ingredients cooked under vacuum low temperature to improve the flavor of the food ingredients.
[0028] In addition, the vacuum low-temperature cooking apparatus according to the present invention may have one or more vacuum pumps, and a bypass line may be connected to the exhaust line (vacuum line) connecting the vacuum cooking chamber and the vacuum pump, and one or more valves may be installed in the exhaust line.
[0029] Other features of the vacuum cooking container and vacuum low-temperature cooking apparatus according to the present invention will become clearer through the following examples. [Brief explanation of the drawings]
[0030] [Figure 1]1 is an external perspective view showing a vacuum cooking container according to an embodiment of the present invention with the lid closed; [Figure 2] 1 is a cross-sectional view showing a detailed structure of an exhaust unit of a vacuum cooking container according to an embodiment of the present invention. [Figure 3] 1 is an exploded perspective view showing the state before the membrane and clamping plate of the exhaust unit of the vacuum cooking container according to one embodiment of the present invention are fixed to the side wall of the container body. FIG. [Figure 4] 1 is an external perspective view of a vacuum low-temperature cooking apparatus according to an embodiment of the present invention; [Figure 5] FIG. 10 is an external perspective view of a vacuum low-temperature cooking apparatus according to another embodiment of the present invention, with the door open. [Figure 6] 3 is a diagram illustrating the operating states of each part and the process of change in the steak when cooking steak using the vacuum low-temperature cooking device according to the present invention. [Figure 7] 10 is a diagram showing the structure of a vacuum low-temperature cooking apparatus according to still another embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0031] DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS Hereinafter, embodiments of a vacuum cooking container and a vacuum low-temperature cooking device according to the present invention will be described with reference to the accompanying drawings.
[0032] <Example of vacuum cooking container> 1 to 3 show a vacuum cooking container 100 according to one embodiment of the present invention.
[0033] In this embodiment, the vacuum cooking container 100 comprises a rectangular cylindrical container body 110 with an open top, and a lid 120 for opening and closing the top of the container body 110.
[0034] The container body 110 and the lid 120 may have a planar shape other than a square.
[0035] The container body 110 and the lid 120 may be made of metal or synthetic resin, and may be made of the same material or different materials.
[0036] In this embodiment, the container body 110 and the lid 120 are fixed to each other or released from the fixed state by locking means 130 provided on both long sides, and an airtight seal 150 is interposed at the contact point between the container body 110 and the lid 120.
[0037] Furthermore, a concave-convex pattern may be formed on the bottom plate 112 of the container body 110 so that grill marks or the like are left on the surface of the food ingredients while the food ingredients are being cooked.
[0038] In this embodiment, the side wall 111 of the container body 110 is provided with an exhaust unit 140 that connects the inside of the container body 110 with the outside.
[0039] The exhaust unit 140 is composed of a nozzle 141 that is attached to the outer surface of the side wall 111 of the container body 110 through a through hole drilled in a part of the side wall 111, a clamping plate 145 that has an exhaust guide hole 146 drilled in the part corresponding to the nozzle 141 and is fixed to the inner surface of the side wall 111 of the container body 110, and a membrane 143 that is interposed between the inner surface of the side wall 111 of the container body 110 and the clamping plate 145 and has a communicating hole 144 with a diameter smaller than the diameter of the flow path 142 drilled in the part corresponding to the flow path 142 of the nozzle 141.
[0040] In this embodiment, the flow passage 142 of the nozzle 141, the communication hole 144 of the membrane 143, and the exhaust guide hole 146 of the clamping plate 145 form a single passage through which steam can be discharged. The size (diameter) of the hole is the largest for the exhaust guide hole 146, and the flow passage 142 is slightly larger than the communication hole 144.
[0041] The membrane 143 is preferably made of a thin material that has elastic restoring force, such as a synthetic resin sheet or elastomer film, and the sandwiching plate 145 can be made of a metal plate or a synthetic resin plate.
[0042] If the materials of the membrane 143 and the sandwiching plate 145 can be fused to each other by heat or ultrasonic waves, the membrane 143 and the sandwiching plate 145 may be manufactured as a single unit.
[0043] In this embodiment, a gap G of a predetermined dimension exists between the membrane 143 and the inner end of the nozzle 141 .
[0044] When cooking food materials under vacuum at low temperature, if the internal pressure of the vacuum cooking container 100 is higher than the external pressure of the vacuum cooking container 100, the thin membrane 143 made of a flexible material will bulge toward the inner end of the nozzle 141 at the portion exposed through the exhaust guide hole 146 of the clamping plate 145 due to the internal pressure of the vacuum cooking container 100, and this bulging of the membrane 143 will end when the peripheral portion of the communication hole 144 of the membrane 143 comes into contact with the inner end of the nozzle 141.
[0045] Therefore, the maximum diameter of the communication hole 144 of the membrane 143 is limited by the size of the set gap G. In addition, the gap G slightly delays the time it takes for the steam generated during the cooking process of the food to be completely discharged from the vacuum cooking container 100, thereby preventing a sudden drop in humidity inside the vacuum cooking container 100 and ensuring that the food is cooked to a moist state.
[0046] The variable diameter of the communicating holes 144 of the membrane 143, which are elastically restored between the reference diameter and the maximum diameter, differs depending on the material of the membrane 143, but is usually 0.2 to 1 mm, preferably 0.2 to 0.6 mm.
[0047] <Example of a vacuum low-temperature cooking device> 4 to 7 show an embodiment of a vacuum low-temperature cooking apparatus 200 according to the present invention, which may include a cabinet 210 in which a vacuum cooking chamber VC is provided, a heating plate 250 placed in the vacuum cooking chamber VC, a vacuum pump that applies vacuum pressure to the vacuum cooking chamber VC, a contact unit 270 whose volume expands when vacuum pressure is applied to the vacuum cooking chamber VC and whose volume contracts when the vacuum pressure is released, and a control unit 230 that controls the operating state of the heating plate 250 and the vacuum pump.
[0048] In addition, a plurality of heating plates 250 may be arranged in multiple rows and / or multiple stages in the vacuum cooking chamber VC.
[0049] Each embodiment will be described below with reference to the drawings.
[0050] First Example In a first embodiment, the cabinet 210 of the sous vide cooking appliance 200 is divided into two sections: an upper compartment and a lower compartment.
[0051] The upper compartment is provided with a vacuum cooking chamber that is opened and closed by a door 220. Also provided are a heating plate and a contact unit, which will be described in detail in the third embodiment, a vacuum gauge (not shown) for detecting the pressure inside the vacuum cooking chamber, and a temperature sensor (not shown) for detecting the temperature (surface temperature) of the heating plate.
[0052] The lower compartment is provided with a vacuum pump (not shown).
[0053] A control unit 230 is provided on the front surface of the lower compartment of the cabinet 210, and position moving and fixing devices 240 are provided at four locations (corners) on the underside of the lower compartment.
[0054] The control unit 230 may be configured to include a plurality of buttons each having a different function, a timer for setting the cooking time, and a display for displaying the detected values of the vacuum gauge and the temperature sensor in numerical form.
[0055] Second Example In the vacuum low-temperature cooking apparatus 200 shown in FIG. 5, the interior of an integrally formed cabinet 210 is divided into an upper space and a lower space.
[0056] A vacuum cooking chamber VC is provided in the upper space and is opened and closed by a door 220.
[0057] On one side portion of the upper front surface of the cabinet 210 (a portion not interfering with the door 220), control units 230 having the same configuration are provided in two tiers, one above the other.
[0058] A vacuum pump (not shown) is built into the lower space, and height-adjustable fixtures 260 are provided at four locations (corners) on the bottom of the cabinet 210 to adjust the level of the vacuum low-temperature cooking apparatus 200.
[0059] In addition, two heating plates 250 are provided above and below the vacuum cooking chamber VC, and two vacuum cooking containers 100 are arranged on each heating plate 250.
[0060] Further, a contact unit, which will be described in detail in the third embodiment, is provided on the lower surface of the heating plate 250, which is the upper one of the two heating plates, and on the lower surface of the upper plate of the cabinet 210, respectively.
[0061] Third Example 7, the inside of the cabinet 210 is divided into five spaces. The cabinet 210 may be an integrated type or an assembly type that can be separated into two or more compartments.
[0062] In the third embodiment, two vacuum cooking chambers VC are arranged in the upper part of the cabinet 210, and three spaces are provided in the lower part of the cabinet 210 for arranging a multipurpose chamber UC, a vacuum pump chamber PC and a flavor enhancement unit 290.
[0063] In the vacuum cooking chamber VC on one side where the door 220 is open, five heating plates 250 are arranged in five vertical tiers at intervals from each other, and vacuum cooking containers 100 are arranged in two rows for each heating plate 250.
[0064] The vacuum cooking chamber VC on the other side is blocked by the open door 220 of the vacuum cooking chamber VC on one side, and the vacuum cooking chamber VC on the other side may be provided with heating plates 250 in four tiers, one above the other. That is, the vacuum cooking chambers VC on both sides may have different or the same number of heating plates 250.
[0065] The heating plate 250 is provided with a heater H as shown in FIG.
[0066] The number of heaters H provided for each heating plate 250 can be determined arbitrarily.
[0067] Furthermore, a contact unit 270 is disposed above each vacuum cooking container 100. When an airbag charged to a predetermined pressure to prevent gases such as air from entering or leaving is used as the contact unit 270, a clamp 280 or the like can be installed on the underside of the heating plate 250 or the underside of the upper plate of the cabinet 210 to enable attachment and detachment of the airbag. Alternatively, an airbag that allows gases to enter and exit through an air pipe equipped with a valve may be used.
[0068] Examples of flavor enhancement unit 290 include a microwave oven and an oven.
[0069] <Changes in food ingredients during vacuum low-temperature cooking and the operating status of each part of the device> 6 is a diagram illustrating the operation of each part of the vacuum cooking container 100 and the vacuum low-temperature cooking device according to the present invention and the changes in the food material 300 when cooking the food material 300. It is assumed that the food material 300 is steak (meat).
[0070] First, the vacuum cooking container 100 containing the food material 300 is placed on the upper surface of the heating plate 250 of the vacuum cooking chamber, and then the door of the vacuum cooking chamber is closed to seal the vacuum cooking chamber.
[0071] Next, the cooking time and temperature are set through the operation of the control unit, and the vacuum pump is activated.
[0072] In this way, a vacuum pressure is applied to the vacuum cooking chamber, the heater H of the heating plate 250 generates heat, and the temperature of the vacuum cooking container 100 is heated to the set cooking temperature. At this time, the air bag of the contact unit 270 inflates and presses the vacuum cooking container 100 placed on the top surface of the heating plate 250 to prevent it from floating up.
[0073] The vacuum cooking chamber continues to be evacuated until the internal pressure reaches the set vacuum pressure, and during this process, the air inside the vacuum cooking container 100 is sucked into the vacuum cooking chamber through the exhaust unit, causing the internal pressure of the vacuum cooking container 100 to become negative pressure (vacuum pressure).
[0074] When the pressure inside the vacuum cooking container 100 changes to negative pressure, the muscle tissue of the food material 300 contained in the vacuum cooking container 100 expands, and the volume expands by 30 to 40% compared to the volume at atmospheric pressure.
[0075] Therefore, when a liquid such as water or liquid seasoning 301 is placed together with the food material 300, the liquid seasoning or the like can easily permeate the inside of the food material 300.
[0076] During the set cooking time, the internal pressure of the vacuum cooking container 100 is maintained at a level higher than the negative pressure applied to the vacuum cooking chamber. Typically, the vacuum pressure applied to the vacuum cooking chamber is 5% of atmospheric pressure, and the internal pressure of the vacuum cooking container 100 is 10-15% of atmospheric pressure.
[0077] When the set cooking time is over, the negative pressure in the vacuum cooking chamber is released and returns to atmospheric pressure, the power supply to the heater H is stopped, and the airbag, which is the contact unit 270, restores its volume from its inflated state to its original state.
[0078] Then, the door of the vacuum cooking chamber is opened and the vacuum cooking container 100 is removed, completing the entire vacuum low-temperature cooking process, and the volume of the food ingredients that has expanded under negative pressure is restored to its original volume.
[0079] Although the above describes embodiments illustrating the technical concept of the present invention, those skilled in the art will understand that the present invention is not limited to the configurations and functions described, and that various changes and modifications can be made to the present invention without departing from the scope of the technical concept described in the description of the invention and the claims.
[0080] As one variation, if the cabinet is an assembly type that can be separated into two or more compartments (e.g., a first compartment and a second compartment), these compartments may be arranged left-right rather than vertically. Similarly, if the cabinet is an integrated type in which the interior is divided into two or more spaces (e.g., a first space and a second space), these spaces may also be arranged left-right rather than vertically.
[0081] As another modification, the contact unit may be a pneumatic cylinder mechanism or the like.
[0082] The food material to be cooked may be in powder form, and the food material can be mixed into a seasoning liquid before cooking.
[0083] Accordingly, all such suitable variations, modifications and equivalents should be considered as falling within the scope of the present invention. [Explanation of symbols]
[0084] 100...Sous Vide Cooking Container 110...Container body 111...Side wall 112...Bottom plate 120…Lid 130... Locking means 140...Exhaust unit 141...Nozzle 142...Flow passage 143...Membrane 144...Communicating hole 145... Clamping plate 146... Exhaust guide hole G...gap 150...Seal 200...Vacuum low-temperature cooking device 210…Cabinet VC…Vacuum cooking chamber 220...door 230...Control unit 240... Position moving and fixing device 250...heating plate H...Heater 260...Height adjustable fixture 270... Close-fitting unit 280...Clamp 290...Flavor enhancement unit UC…Multipurpose room PC: Vacuum pump room 300…Food materials 301…seasoning liquid
Claims
1. A vacuum cooking container that is placed in a vacuum cooking chamber of a vacuum low-temperature cooking device and allows food materials to be cooked at a low temperature under vacuum, The container comprises a cylindrical container body with an open top and a lid for opening and closing the open top of the container body, The container body comprises a bottom plate and a side wall, A seal is interposed between the container body and the lid to seal the internal space of the vacuum cooking container formed when the open top of the container body is covered with the lid, An exhaust unit that connects the internal space of the vacuum cooking container to the outside is provided on a part of the side wall of the container body, The exhaust unit is a nozzle attached to a through-hole formed in a portion of a side wall of the container body; a clamping plate having exhaust guide holes drilled in the portions corresponding to the nozzles and fixed to the inner surface of the side wall of the container body; a membrane interposed between the inner surface of the side wall of the container body and the holding plate, and having a communicating hole perforated therein, the communicating hole having a diameter smaller than that of the flow path of the nozzle; A vacuum cooking container characterized in that a gap of a predetermined dimension exists between the membrane and the inner end of the nozzle, and the diameter of the communicating hole formed in the membrane varies depending on the magnitude of the pressure difference between the internal pressure of the vacuum cooking container, which changes during cooking of food materials at low vacuum temperatures, and the external pressure surrounding the vacuum cooking container.
2. A vacuum low-temperature cooking device capable of cooking food materials at low temperatures under vacuum using the vacuum cooking container according to claim 1, a cabinet having either an assembled type in which the cabinet is divided into a first compartment and a second compartment, or an integrated type in which the cabinet is divided into a first space and a second space; a vacuum cooking chamber provided in the first compartment or the first space and opened and closed by a door; a heating plate disposed in the vacuum cooking chamber; a vacuum pump disposed in the second compartment or the second space for applying a vacuum to the sous vide cooking chamber through an exhaust line; a contact unit that is provided in the first compartment, the first space, or the heating plate, and that applies a pressure to the vacuum cooking container so that the vacuum cooking container is in close contact with the heating plate when a vacuum pressure is applied to the vacuum cooking chamber, and that removes the pressure when the vacuum pressure is released; A vacuum low-temperature cooking device comprising a heating plate and a control unit that controls the operating state of a vacuum pump.
3. The vacuum low-temperature cooking device according to claim 2, characterized in that the flavor enhancement unit or multipurpose chamber is provided in the second compartment or second space, and the contact unit is detachable from the first compartment, the first space, or the heating plate.
Citation Information
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