Beverage dispenser
The beverage extractor with a temperature adjustment chamber addresses the issue of inconsistent extraction temperatures, ensuring precise control for ideal flavor and nutrient extraction.
Patent Information
- Application Number
- JP2024577456
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2023-03-21
- Filing Date
- 2024-03-21
- Publication Date
- 2025-11-13
- Estimated Expiration
- 2044-03-21
AI Technical Summary
Conventional beverage extraction methods fail to maintain a consistent temperature during the extraction process, leading to significant heat loss and compromised flavor, aroma, and nutritional benefits due to uncontrolled temperature changes.
A beverage extractor with an integrated temperature adjustment chamber adjacent to the extraction chamber, allowing for precise temperature control through a temperature-adjusted medium, such as heated or cooled water, to stabilize the extraction environment.
Enables consistent extraction results by maintaining or adjusting the temperature within 1°C, ensuring optimal flavor, aroma, and nutrient extraction without environmental influence, reducing energy and resource wastage.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a beverage extractor having a temperature control mechanism. [Background technology]
[0002] Extraction is performed from a variety of materials, and for example, manual extraction methods have been known for extracting coffee or tea by manually pouring hot or cold water (Patent Documents 1 to 10).
[0003] A coffee dripper (hereinafter referred to as a dripper) used for pour-over, a manual coffee extraction method, is formed with an extraction chamber that opens upward and an extraction hole that opens to the bottom or side of the extraction chamber. For example, a filter made of paper or metal is placed in the extraction chamber of the dripper, coffee powder is placed in the filter, and hot water is poured in manually. The filtered coffee liquid is then discharged from the extraction hole of the dripper and stored in a container below. In the case of tea extraction using a pot, the tea leaves are placed in the pot and the extract, which has ingredients dissolved in it by hot water, is filtered when it is separated from the tea leaves or when it is discharged.
[0004] The drippers and tea brewing pots used in the conventional extraction methods are made from metal, glass, ceramics, resin, rubber, or composite materials such as these, and the hot water poured into them is extracted under conditions where heat is lost by these devices, the extraction materials such as coffee powder and tea leaves, and the ambient temperature.
[0005] Conventional beverage extractors lack a mechanism for controlling the temperature inside the extraction chamber, which has a significant impact on the dissolution of ingredients (hereinafter referred to as the dissolution phenomenon) and the resulting extract during the several-minute extraction process that determines the components in the extract, such as taste, aroma, and nutrients. For example, Patent Documents 11 and 12 aim to preserve the flavor of the extracted liquid after extraction using conventional extraction methods, and Patent Documents 13 and 14 have a double structure that aims to maintain the temperature with an air layer with low thermal conductivity in order to prevent the heat of the poured hot water from diffusing, but neither of them has a mechanism for "temperature control during the extraction process" that actively utilizes heat. [Prior art documents] [Patent documents]
[0006] [Patent Document 1] Japanese Patent Application Laid-Open No. 2014-104155 [Patent Document 2] Patent Publication No. 2017-121335 [Patent Document 3] Utility Model Registration No. 3116219 [Patent Document 4] Jikko No. 58-11312 [Patent Document 5] Jitsuzen Showa 62-127239 Public Gazette [Patent Document 6] Design Registration No. 1559619 [Patent Document 7] Jipkaihei 5-031733 [Patent Document 8] Japanese Patent Application Laid-Open No. 2010-259454 [Patent Document 9] Jitsuzen Showa 61-163578 [Patent Document 10] Utility Model Registration No. 3217869 [Patent Document 11] Patent Publication No. 10-146277 [Patent Document 12] Patent Publication No. 62-211017 [Patent Document 13] Patent Publication No. 2008-194254 [Patent Document 14] Utility Model Registration No. 3131257 Summary of the Invention [Problem to be solved by the invention]
[0007] For example, in the case of conventional methods of brewing coffee or tea, the water in the brewing process, from the start of pouring, including the steaming period, to the completion of the brewing, loses temperature during the brewing process due to the temperature of the brewing equipment, such as the dripper, filtration filters (made of paper, cloth, metal, glass, or ceramic), or brewing pot, as well as the temperature of the brewing materials themselves, such as coffee powder or tea leaves, and their physical properties, such as thermal conductivity, specific heat, heat capacity, and volatility, affecting the brewing results. Furthermore, because heat continues to be lost to the surroundings due to the difference in temperature with the ambient temperature, it is difficult to maintain a constant temperature condition necessary for the user's ideal brewing.
[0008] Traditionally, methods to prevent heat loss, which is a factor influencing the dissolution phenomenon, and to maintain a constant water temperature during the extraction process have involved blanching or heating the equipment before extraction. However, drippers and filters have the greatest impact, as the poured water is immediately discharged. This means that thick ceramic or glass drippers and filters, or those made of resin or rubber with a high specific heat, require a lot of water to heat. This means that invisible costs such as water, utility bills, labor, and time are incurred with each extraction, and the total amount of loss can be enormous.
[0009] This has led to the unfortunate situation where many users, who are ordinary people, have to compromise on the ideal extraction method in their daily extractions and are unable to enjoy the original flavor and nutritional benefits.
[0010] Furthermore, conventional methods such as blanching and boiling are only intended to prevent the temperature of the water from dropping during the extraction process, and are not intended to control the temperature to promote, suppress, or stabilize the dissolution phenomenon, such as by heating or partial cooling to deal with the transfer of heat.
[0011] The purpose of this invention is to control the temperature inside the extraction chamber, which affects the elution of components that determine the taste, aroma, and nutrients of the extract, to achieve the ideal extraction for the user. Another object of this invention is to provide an extractor that can stably maintain or adjust the temperature inside the extraction chamber for several minutes from the start to the end of extraction. [Means for solving the problem]
[0012] According to the present invention, there is provided a beverage extractor having an extraction chamber in which a liquid is passed through an extraction material to extract ingredients, and a temperature adjustment chamber adjacent to the extraction chamber via a partition wall, wherein a temperature adjustment medium is introduced into the temperature adjustment chamber to adjust the temperature during the extraction process in the extraction chamber.
[0013] The temperature-adjusted chamber may be located outside the extraction chamber, and the partition wall may be at least one of the side, bottom, and top walls that define the extraction chamber. The temperature-adjusted chamber may be provided with an inlet through which the temperature-adjusted medium is introduced. Alternatively, a plurality of temperature-adjusted chambers may be provided, allowing multiple temperature-adjusted mediums of different temperatures to be introduced simultaneously, or temperature-adjusted mediums of the same or different temperatures to be introduced at different times. Furthermore, the temperature-adjusted chamber surrounding the extraction chamber may be provided with multiple concentric weirs arranged in a planar direction, allowing temperature-controlled water to be introduced at different times between the partitions, so that the introduced fluid moves from the inner weir adjacent to the extraction chamber to the outer weir, filling each one. The extraction chamber may also function as a coffee filter receiver. That is, the beverage extractor of the present invention may be a coffee dripper. An electronic display that displays information about the extraction method and ingredients, such as a thermometer that displays the temperature inside the temperature-controlled chamber and a recipe that shows the amount of hot water to pour and the timing of pouring, may be installed on the outer wall. [Effects of the Invention]
[0014] In conventional manual extractors, equipment with high thermal conductivity begins to cool immediately after boiling, as heat is dispersed to the ambient temperature, etc., and the temperature begins to drop. Also, heating equipment with a high heat capacity and excellent heat retention requires a lot of water and energy costs each time an extract is made, but these measures only serve to prevent the heat from the hot water being taken away by the equipment used during the extraction process. According to the present invention, temperature control within the extraction chamber to promote, inhibit, or stabilize the elution phenomenon that determines the taste, aroma, nutrients, and other components in the extract can be easily performed at low cost using heat conducted from the temperature control chamber filled with a temperature control medium such as superheated hot water.
[0015] Specifically, in the past, as soon as pouring began, temperature differences between the equipment, extraction material, and the environment caused temperature changes due to heat transfer, which affected the extraction results. However, when extracting coffee or tea, for example, by using high-temperature water in the temperature-adjusted chamber of the present invention, heat loss from the extraction chamber is suppressed, and an optimal and stable temperature environment is simply and reliably reproduced and maintained in the leaching phenomenon, in which taste, aroma, and nutrients change with a temperature difference of 1°C or less.
[0016] This makes it possible to easily and accurately reproduce the extraction of components such as the taste and aroma that the user desires, for example, by avoiding temperature ranges that tend to leach out unpleasant flavors and astringency, or by reducing contact with said temperature ranges, without being affected by environmental conditions such as season or region, or the user's experience.This means that anyone can easily brew delicious coffee or tea anytime, anywhere, even without skilled techniques or knowledge.
[0017] Proverb problem solved: Take the teapot to the kettle. When it comes to coffee, in addition to the traditional French press, "temperature-focused extraction" using high-quality lightly roasted beans and specialty coffee in the high-temperature range is gaining popularity and attention. Furthermore, even during long-term low-temperature extraction of coffee, black tea, herbal tea, etc. at temperatures in the 60 to low 80°C range, preventing the extraction temperature from dropping (maintaining the temperature) is key to preventing the flavor of the extracted liquid from being damaged, and the present invention, which can achieve a stable, optimal temperature environment, makes it possible to solve these problems.
[0018] Furthermore, in the process of achieving the optimal temperature environment, it will be possible to significantly reduce the enormous amount of invisible waste costs, such as the water, utility costs, labor, and time previously used for blanching equipment and boiling coffee. At the same time, this invention will contribute to the recovery of the joy and pleasure of pursuing the ideal, and to the many ordinary consumers who have had to compromise on the ideal extraction method in their daily extractions due to these costs, allowing them to enjoy the benefits of the original deliciousness and nutritional effects of coffee.
[0019] The present invention makes it possible to easily reproduce a temperature-controlled elution environment, such as extraction with the temperature maintained or extraction within a limited temperature range, thereby enabling ideal component extraction. It is also expected that new delicious flavors will be created through new extraction methods that actively utilize heat (keeping warm, heating, or cooling) and new recipes that use these extraction methods. [Brief explanation of the drawings]
[0020] [Figure 1] 1A and 1B are explanatory diagrams of an A-type extractor, in which FIG. 1A is a schematic elevational cross-sectional view, and FIG. 1B and FIG. 1C are perspective views of two examples of embodiments with different external shapes. [Figure 2] 2A and 2B are explanatory diagrams of a B-type extractor, in which FIG. 2A is a schematic elevational cross-sectional view, and FIG. 2B and FIG. 2C are perspective views of two examples of embodiments with different external shapes. [Figure 3] 3A and 3B are explanatory views of a C-type extractor, in which FIG. 3A is a schematic elevational cross-sectional view, and FIGS. 3B and 3C are perspective views of example embodiments with different external shapes. [Figure 4] 4A and 4B are explanatory diagrams of a D-type extractor, in which FIG. 4A is a schematic elevational cross-sectional view and FIG. 4B is a perspective view of an example embodiment. [Figure 5] 5A and 5B are explanatory diagrams of an E-type extractor, in which FIG. 5A is a schematic elevational cross-sectional view, and FIG. 5B and FIG. 5C are perspective views of two examples of embodiments with different external shapes. [Figure 6] 6A and 6B are explanatory diagrams of an F-type extractor, where FIG. 6A is a schematic elevational cross-sectional view and FIG. 6B is a perspective view of an example embodiment. [Figure 7]7A and 7B are explanatory diagrams of a G-type extractor, in which FIG. 7A is a schematic elevational cross-sectional view (side view), and FIG. 7B and FIG. 7C are perspective views of two examples of embodiments with different external shapes. [Figure 8] 8A and 8B are explanatory diagrams of a G-type extractor, in which FIG. 8A is a schematic elevational cross-sectional view (front view), and FIG. 8B and FIG. 8C are perspective views of two examples of embodiments with different external shapes. [Figure 9] 9A and 9B are explanatory diagrams of an H-type extractor, in which FIG. 9A is a schematic elevational cross-sectional view, and FIG. 9B and FIG. 9C are perspective views of two examples of embodiments with different external shapes. [Figure 10] 10A and 10B are explanatory diagrams of an I-type extractor, in which FIG. 10A is a schematic elevational cross-sectional view, and FIG. 10B is a perspective view of an example embodiment. [Figure 11] 11(a) is a schematic elevational cross-sectional view of a J-type extractor, and FIG. 11(b) and FIG. 11(c) are perspective views of two examples of embodiments with different external shapes. DETAILED DESCRIPTION OF THE INVENTION
[0021] The extractor of the present invention is formed by an extraction chamber 2 in which the extraction material and hot water are placed, and a temperature adjustment chamber 3 in which the temperature adjustment medium is placed and the temperature inside the extraction chamber 2 is controlled. During the extraction process, which lasts for several minutes and determines the taste and aroma, the temperature inside the extraction chamber 2 is maintained, heated, or cooled by heat conduction through the temperature control medium and partition wall introduced into the temperature control chamber 3 to prevent the temperature inside the extraction chamber 2 from being adversely affected by diffusion, thereby controlling the extraction temperature to the user's ideal level according to the extraction purpose.
[0022] The present invention provides an extractor, such as a dripper or a pot, with a temperature-adjusting chamber adjacent to the extraction chamber, which is an independent space for placing a temperature-adjusting medium to maintain or instantly adjust the water temperature during the extraction process required for the user's ideal component extraction. Here, "temperature-adjusting medium" refers to temperature-controlled water, a heat-generating agent, or a cooling substance such as ice or a cooling pack.
[0023] For example, in the case of a dripper, an extraction chamber that opens upward and is equipped with a filtration filter holder, the temperature adjustment chamber that is equipped with an inlet adjacent to the extraction chamber, and an extraction hole that opens at the bottom or side of the extraction chamber and discharges the extracted liquid are formed. In the case of a tea extraction pot, an extraction chamber for extracting ingredients and a temperature-adjusting chamber equipped with an injection port adjacent to the extraction chamber are formed. By introducing the temperature control medium into these added temperature control chambers, it becomes possible to maintain, heat, or cool the temperature during the extraction process, which promotes or suppresses the dissolution phenomenon in the adjacent extraction chamber, thereby achieving ideal extraction tailored to the purpose.
[0024] The present invention makes it possible to control the temperature inside the extraction chamber, which affects the elution of components during extraction. However, in order to extract the "ideal extract desired by the user," many influential variables other than temperature are involved. For example, if we take "good coffee" as an example, Example) Beans: variety, origin, roasting, aging, storage method Water: hardness, pH, molecular bonding state (water molecules, minerals), ions Grinding: Grinding size, grinding method (disc type / conical type / propeller type) Equipment: Extractor, filter, pot * Shape, material, heat retention Amount: Amount of coffee powder, amount of hot water poured, amount of extraction (number of cups), thickness of hot water (amount poured) Temperature: water temperature, equipment temperature, coffee grounds temperature (room temperature / refrigerated / frozen), ambient temperature Time: Pouring time (speed, timing), Extraction time (soaking / permeation) Technique: Pouring position (point, range), pouring height, number of pours, speed, etc.
[0025] All of the above are important for ideal component extraction, but for the purpose of explaining the function of the present invention, the following explanation will be given assuming that everything except temperature control, including the temperature of the pouring water used for extraction, is the same.
[0026] For example, when brewing coffee or tea using a conventional manual brewer that does not have a temperature control mechanism, even if the brewer is heated in hot water, the temperature of the brewed liquid will drop by 10 to 7 degrees Celsius during the brewing process, for example, for two and a half minutes (room temperature 24 degrees Celsius). *The degree of decrease varies depending on the amount of water used for extraction and the initial temperature (100-65°C).
[0027] The aforementioned temperature changes caused by the pouring temperature and heat loss create different contact temperature ranges that affect the extraction material (such as reduced cell membrane function, osmotic pressure, and differences in diffusion), resulting in differences in the extracted components, which are the taste, aroma, and nutrients themselves. This temperature change during the extraction process has an extremely large impact on the extraction results, as the elution phenomenon changes taste, aroma, and nutrients with a temperature difference of 1°C or less, but until now this diffusion has been uncontrolled.
[0028] When it comes to achieving ideal extraction, the temperature drop during the extraction process due to diffusion is a variable that has a negative impact, but with this invention, the heat that would have been lost in conventional extractors due to natural laws can be controlled using the temperature adjustment chamber, making it possible to adjust the temperature to the ideal extraction temperature. In other words, simply adding the extractor of the present invention to the materials, tools, and methods normally used in the process of extracting coffee or other beverages allows for ideal temperature-controlled extraction. For example, pre-heated water with a controlled temperature is introduced into the temperature-controlled chamber of the extractor of the present invention, and the temperature of the inner wall of the empty extraction chamber is set to the same temperature as the pouring water, which is ideal for extracting the desired components. This allows for ideal component extraction through temperature control that actively utilizes heat, such as by maintaining or increasing the temperature of the extract liquid or by decreasing it by only 3°C, without adversely affecting the delicate dissolution phenomenon caused by heat diffusion during the several minutes of extraction process that determines the flavor, aroma, and nutrients.
[0029] The preferred embodiment of the present invention will be described with reference to the drawings. The extractor of the present invention according to this application has an extracting chamber 2 and a temperature control chamber 3, and is made of a waterproof and heat-resistant material such as metal, glass, ceramics, stone, resin, rubber, wood, bamboo, fiber, leather, or paper. Figures 1 to 11 show 11 examples of extractors with different filtration methods, temperature control methods, and extraction liquid discharge methods due to differences in shape, material, and filtration filter, and are schematic elevational cross-sectional views to explain the mechanism of the present invention and the characteristic configurations of the embodiments, as well as perspective views of the embodiment examples.
[0030] The extractor 1 shown in Figures 1 to 6 has an extraction chamber 2 and a temperature-adjusting chamber 3, an independent space for containing a temperature-adjusting medium for adjusting the temperature of the water in the extraction chamber during the extraction process. The temperature-adjusting chamber 3 is adjacent to the bottom, side, top, or multiple surfaces, with the inner wall (surface) extending from the upper pouring spout 4 toward the extraction hole 5 as a partition. The extraction chamber 2 is the internal space of a conical or trapezoidal extraction vessel, such as those found in commercially available coffee drippers. In the extractor 1 of the present invention, the extraction vessel has a two-layer or dual-layer structure. That is, an outer wall and an outer bottom wall are provided to externally cover the side wall (referred to as the inner wall) and bottom wall (referred to as the inner bottom wall) of the wall (filter holder 6) that defines the extraction chamber 2. The space between the inner wall and the outer wall and the space between the inner bottom wall and the outer bottom wall constitute the temperature-adjusting chamber 3.
[0031] Specifically, in the extractor 1 shown in Figures 1, 2, 4, 5, 6, 9, 10, and 11, only the side wall has a two-layer structure as shown in the cross-sectional view, and the space between the inner wall 20 and the outer wall 22 becomes the temperature adjustment chamber 3. On the other hand, in the extractor 1 shown in Figure 3, the side wall and the bottom wall have a two-layer structure, and not only the space between the inner wall 20 and the outer wall 22 but also the space between the inner bottom wall 23 and the outer bottom wall 24 constitute the temperature adjustment chamber 3.
[0032] In the extractor 1 shown in Figures 5 and 6, the temperature-adjusted chamber 3 between the inner wall 20 and the outer wall 22 is divided vertically into two, with the upper temperature-adjusted chamber 3A and the lower temperature-adjusted chamber 3B being independent spaces. To equalize the temperature in the extraction chamber 2 through diffusion rather than mixing, the two temperature-adjusted chambers 3A and 3B can be filled with different temperatures, one high and one low. Inlet ports 7A and 7B are provided in each temperature-adjusted chamber.
[0033] 7 and 8 show an extractor that does not have an extraction hole for discharging the extracted liquid, and has an extraction chamber 2 and a temperature adjustment chamber 3 that adjusts the water temperature during the extraction process, which are adjacent to each other and separated by the bottom surface (inner bottom wall 23) of the extraction chamber 2. This is an example of an immersion extractor for coffee, black tea, herbal tea, etc., and the space between the inner bottom wall 23 and the outer bottom wall 24 forms the temperature adjustment chamber 3. The space 14 between the inner wall 20 and the outer wall 22 may be either partitioned and sealed from the temperature control chamber 3 or may be connected to it without a partition, and functions as a heat-retaining space.
[0034] FIG. 8 is a front view of a variant of FIG. 7 in which the temperature control chamber 3 is divided into two in a horizontal direction. The divided temperature control chamber 3A on the left side and temperature control chamber 3B on the right side are each independent spaces, and the temperature in the extraction chamber 2 is equalized by diffusion without mixing. Therefore, the two temperature control chambers 3A and 3B can be filled with different temperatures, high and low, or the same temperature control medium can be introduced at different times to control the temperature over a longer period of time. Each temperature control chamber in FIGS. 7 and 8 is provided with an injection port 7A, 7B, respectively. The space 14 between the temperature control chambers 3A and 3B functions as a heat-retaining space that prevents thermal interference.
[0035] Figure 10 shows an embodiment in which a weir, a bowl-shaped partition, is installed concentrically in the planar direction within the temperature control chamber 3, surrounding the extraction chamber 2. As shown in Figure 10(a), temperature-controlled fluid can be introduced in two separate batches (1st and 2nd) with a time lag. First, fluid is poured up to the 1st position to fill the weir adjacent to the extraction chamber 2 defined by the inner side wall 21. After heating the extraction chamber 2 to the desired temperature, additional fluid of the same or different temperature can be poured over the weir to the 2nd position, thereby providing a partition that allows the temperature of the extraction chamber 2 to be controlled in two stages.
[0036] The temperature-adjusting chamber 3 can be installed in any extraction chamber 2 depending on the purpose, and therefore the shape (external and internal shapes), type of filtration filter 8, and the number, size, and shape of extraction holes 5 of the extractor 1 according to this application are not limited to the specific examples shown in Figures 1 to 11. The top and bottom surfaces are basically approximately circular in plan view, but they may also be polygonal or deformed.
[0037] The extractor 1 of the present invention may be integrally formed from a single material, or may be formed entirely from a combination of components made from different materials, such as metal and resin. For example, the partition between the extraction chamber 2 and the temperature-adjusting chamber 3, i.e., the peripheral and bottom walls defining the extraction chamber 2, may be made of metal walls with high thermal conductivity or thin walls with low specific heat, allowing for easier heat transfer between them. Furthermore, the outer wall of the temperature-adjusting chamber 3, which comes into contact with the outside air, may be made of a resin wall with low thermal conductivity, reducing adverse effects such as heat loss due to diffusion. The partitions are preferably made of metals such as copper or stainless steel, or reinforced porcelain or fine ceramics.
[0038] As shown in Figures 3, 4, 7, 8, and 11, placing a lid 9 over the openings of the pouring spout 4 and pouring spout 7, where heat diffusion is likely to occur, is effective in preventing the adverse effects of heat loss and the intrusion of dust. The shapes of the pouring spout 4 and pouring spout 7 are also arbitrary. The pouring spout 4 may be circular, like a typical coffee dripper, or polygonal. The pouring spout 7 may be of any shape as long as it can introduce the temperature-adjusting medium, such as heated water or ice, depending on the intended use, such as brewing or camping. It may be configured to partially or completely encircle the brewing chamber 2 for a predetermined length. It may also be completely sealed while the temperature-adjusting medium remains introduced, in which case it can be heated and used in a microwave oven or the like.
[0039] As illustrated in FIGS. 1, 2, 6, 7, and 9, narrowing the opening between the injection port 7 and the temperature adjustment chamber 3 is effective in preventing the heat in the temperature adjustment chamber 3 from diffusing to the outside.
[0040] Although the extractor of the present invention is specifically shown in the drawings, various modifications are possible, such as the following: For example, if the outer wall of the temperature-adjusted chamber 3 is made of a transparent resin, the dripping of the extract liquid can be easily seen.
[0041] As shown in FIG. 3(a), a stopper leg 10 may be added to prevent the device from falling.
[0042] As shown in FIG. 4, a flange 11 may be added to stabilize the installation.
[0043] As shown in Figures 6 and 11, a retractable extraction hole plug 12 may be added.
[0044] As shown in FIGS. 6 and 9, a drain hole 15 and a drain hole plug 16 that can be opened and closed may be added to the temperature adjustment chamber.
[0045] As shown in FIG. 7, a handle 13 may be added.
[0046] As shown in FIG. 7(a), by combining a heat-retaining space 14 and a temperature-adjusting room 3, heat loss can be prevented.
[0047] As illustrated in Figures 3(a), 6(a), and 9(a), the temperature of the temperature-controlled chamber 3 can also be controlled by installing a small heater 17 inside the temperature-controlled chamber 3 in the extractor 1 of the present invention. This allows for continuous extractions to be performed multiple times without changing the hot water or fluid in the temperature-controlled chamber, thereby enabling extractions to be performed in a stable extraction environment controlled at an optimal temperature, thereby shortening the extraction time. In this case, the temperature-controlled chamber 3 to be heated is very small compared to a water bath, allowing for energy-saving operation and further contributing to reducing wasteful costs. It can also be used with batteries in places without power sources or outdoors.
[0048] A thermometer 18 for checking the temperature inside the temperature-controlled chamber 3 may be installed, and a display panel 19 for displaying the measured value may be installed on the outer wall 22 or the like as shown in FIGS. The thermometer 18 makes it possible to visualize whether the temperature control chamber 3 is being controlled to an ideal temperature relative to the temperature of the heated water introduced into the extraction chamber 2. Any type of thermometer can be used, such as a digital thermometer or a film-like thermometer that indicates the temperature by color. Furthermore, as shown in Figure 3(c), an electronic display can be installed as a display panel that can display information about the extraction method and ingredients, such as a recipe that includes the amount of hot water to pour and the timing of pouring, in addition to the temperature.
[0049] 1 to 11 are diagrams illustrating the characteristic mechanisms of the present invention. In each figure, (a) is a schematic elevational cross-sectional view, and (b) is a perspective view of an embodiment. These explanatory drawings are examples to explain the invention, and in reality, there are countless possible configurations, including structural variations, to design according to the purpose and material while maintaining the temperature control function. For example, as shown in the perspective view of Figure 1(c), which assumes a fan-shaped extractor, the outer wall 22 may be deformed into any shape without impairing the temperature control function. 2 shows a conical extractor in which the outer wall 22 is narrowed at the top and bottom centers, making it possible to reduce the amount of temperature control medium introduced into the temperature control chamber 3. Also, as shown in the perspective view of FIG. 2(c), a columnar protrusion may be provided to reduce the contact area and make it possible to hold it even when it is hot. As shown in the perspective view of Fig. 3(c), the outer shape of the extractor 1 may be a prism rather than a cylinder as shown in Fig. 3(b). In this case, the injection port 7 can be provided at the corner of the prism as shown in Fig. 3(c). Furthermore, as shown in the perspective view of Figure 5(c), the same extraction chamber 2 as Figure 5(b) can have a different external shape. If the temperature adjustment medium is a fluid, heat can be conducted to the extraction chamber 2 no matter how the temperature adjustment chamber 3 is deformed, so the external shape is free without impairing the temperature adjustment function. 7(b) and 7(c) differ in that the temperature adjustment chamber 3 is divided or not, and the number of injection ports provided in each temperature adjustment chamber is also different, so they can be distinguished from each other by their external shapes. Also, the external shapes of Figure 8(b) and Figure 8(c) are similar, and both allow the temperature adjustment medium to be introduced at different times, but the difference is that the shape inside the extraction chamber 2 is circular or square. Furthermore, as shown in the perspective view of Figure 9(c), the lower outer shape of the extractor 1 may be shaped like a hexagram or the like, rather than a cylinder as shown in Figure 9(b). In this case, it is possible to reduce the amount of temperature control medium introduced into the temperature control chamber 3, which, in the case of water or a fluid temperature control medium, contributes to reducing the utility costs and energy and resources such as water required for heating. 11(c) is an example in which the outer shape of the extractor 1 is a rectangular prism with a cross-shaped cross section, rather than a cylinder as shown in FIG. 11(b). The inlet 7 may have any shape as long as it can introduce the temperature control medium into the temperature control chamber 3, but if the inlet is small and difficult to inject, an auxiliary tool such as a funnel as shown in FIG. 11(b) can be used for injection.
[0050] Although the embodiment of the present invention has been described as a beverage extractor, it is not limited to coffee and tea, but can also be used to extract and filter liquids containing solids, such as cooking soups and oils. [Explanation of symbols]
[0051] 1 Extractor 9 Lid 17 Heater 2 Extraction chamber 10 Stopper leg 18 Thermometer 3 Temperature control chamber 11 Flange 19 Display panel 4 Pour spout 12 Extraction hole plug 20 Inner wall 5 Extraction hole 13 Handle 21 Middle side wall 6 Filtration filter receiver 14 Heat insulation space 22 Outer wall 7 Inlet 15 Discharge hole 23 Inner bottom wall 8 Filtration filter 16 Drain hole plug 24 Outer bottom wall
Claims
1. an extraction chamber in which a material component is extracted by passing a liquid through the extraction material; At least one of the side wall, bottom wall and top wall defining the extraction chamber is a partition wall, a temperature-adjusted chamber adjacent to the outside, the temperature-adjusted chamber surrounding the extraction chamber; A weir, which is a bowl-shaped partition, is provided concentrically with the extraction chamber in a planar direction, the temperature adjustment medium introduced into the temperature adjustment chamber fills the inside of a weir adjacent to the extraction chamber, exceeds the capacity of the weir, and then overflows, moving to the outside of the weir; A beverage extractor that adjusts the temperature during the extraction process in the extraction chamber.
2. The temperature adjustment chamber is provided with an inlet through which the temperature adjustment medium is introduced.
2. The beverage extractor of claim 1.
3. The temperature control chamber may include a plurality of temperature control chambers, and a plurality of temperature control media having different temperatures may be introduced into the temperature control chambers. The beverage extractor according to claim 1 , wherein the same temperature-adjusting medium can be introduced at different times.
4. The extraction material is coffee powder, and the temperature adjustment medium is heated water, The extraction chamber is a receiving portion for a coffee filter.
4. A beverage extractor according to claim 1, 2 or 3.
5. The beverage extractor according to claim 4, wherein an electronic display is attached to the outer wall and displays information about the extraction method and ingredients, such as a thermometer that displays the temperature inside the temperature-controlled chamber and a recipe that shows the amount of hot water to pour and the timing of pouring.
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Citation Information
Patent Citations
coffee dripper
JP1559619S
The crystal vibrator holding structure
JP1983011312U
JP1986163578U
JP1987127239U
Boiling pot
JP1987211017A