Still for receiving fluid
By incorporating turbine blades and bearings, the brewing liquid is rapidly mixed with air, solving the problems of time-consuming, labor-intensive processes and oxidation risks associated with traditional decanters, thus improving decanting efficiency and wine quality.
Patent Information
- Application Number
- CN202211697952.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Priority Date
- 2022-08-11
- Filing Date
- 2022-12-28
- Publication Date
- 2025-11-21
- Estimated Expiration
- 2042-12-28
AI Technical Summary
Traditional decanters are time-consuming and laborious, and cannot effectively and quickly aerate wine. Furthermore, existing designs may cause excessive oxidation or splashing of the wine, affecting its quality.
Design an aging device that includes turbine blades and bearings. The turbine blades drive the bearings to rotate, allowing the brewing liquid to mix thoroughly with air and achieve rapid decanting.
Improve decanting efficiency, reduce oxidation risk, prevent wine splashing, increase the surface area of the wine in contact with air, and shorten decanting time.
Smart Images

Figure CN115886599B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present invention is a decanter for receiving fluid to mix the brewed liquid with air to achieve the purpose of decanting. BACKGROUND
[0002] Decanter is also known as decanter bottle or decanter jug, which is a container for decanting or receiving the poured fluid, especially for wine, to contact the wine with air, to fully develop the aroma of the wine, and to separate the sediment in the wine. Common decanters are usually made of glass or crystal, most of which are designed with a long neck and a large belly, narrow at the top and wide at the bottom. Pouring wine into it can increase the surface area of the wine exposed to air, speed up the oxidation process of the wine, accelerate the release of grape fruit aroma trapped in the bottle, and thus soften the astringent taste of the unique phenolic substance "tannin" in the wine, achieving the effect of reducing acidity, making the taste of red wine more smooth and soft. Decanter can also separate the sediment in the bottle from the wine body and filter excess impurities. However, although the readily available decanter on the market can decant, the traditional decanting method is too time-consuming, and is not the best way for restaurants or wine enthusiasts who want to drink wine quickly.
[0003] The most common method of decanting is to pour the wine from the bottle into a decanter. Different decanters will produce different oxidation levels and decanting effects for the wine body. Although oxygen can make the wine taste better, it is also the biggest killer of the wine body. Over-oxidation can cause the wine to deteriorate and lose its flavor. Traditional decanters can only provide one-time decanting. If the wine poured into the decanter is left for too long, it will cause the wine to lose its flavor and fail to effectively show the original quality of the wine.
[0004] Another way to decant is to place the entire bottle of red or white wine in ice before opening it to cool it down, then pour it into a so-called wine glass (or goblet), and shake the wine glass (or goblet) to contact the air for decanting, and finally drink it. However, this traditional method is not only time-consuming and labor-intensive, but also cannot achieve the best decanting effect through shaking.
[0005] In order to increase the efficiency of wine, many new designs of wine decanter were born. As disclosed in Taiwan design patent No. D146984, the product has a pumping part, a delivery pipe and an output part. The pumping part includes a metal ring body lined with a soft and flexible pumping cylinder with air holes communicating with the outside. The output part is a bubble stone, which communicates with the delivery pipe and can be placed in a newly opened wine bottle. By repeatedly pressing and releasing the pumping part, external air can be pumped into the wine bottle through the output part and fully mixed with the wine to achieve the purpose of wine. Although the wine decanter of the invention is simple in design and easy to use, it is a disruptive act to continuously pump air into the bottle for wine. In addition, the speed of pumping air is too fast, which can easily splash the wine out of the bottle, increasing unnecessary trouble.
[0006] Therefore, how to solve the above problems and deficiencies in the art is the research and improvement direction of the inventor and related manufacturers in this industry. SUMMARY
[0007] In view of the above, it is necessary to provide a wine decanter which is easy to use and can fully mix the brewed liquid with air.
[0008] The present application provides a wine decanter for receiving a fluid, which includes a fixed part provided with a bearing, and a turbine vane movably connected to the fixed part through the bearing; wherein when the turbine vane is configured to receive the fluid, thereby driving the bearing to rotate, the wine decanter of the present application can mainly mix the brewed liquid (such as red wine or grape wine) with air, so that the brewed liquid can quickly achieve the purpose of wine.
[0009] In one embodiment, the diameter of the turbine vane is greater than or equal to the outer radius of the bearing.
[0010] In one embodiment, the outer diameter of the bearing ranges from 4mm to 230mm, and the inner diameter of the bearing ranges from 4mm to 150mm.
[0011] In one embodiment, the radius of the turbine vane of the rotating part ranges from 2mm to 200mm.
[0012] In one embodiment, the wine decanter further includes a shaft rod, which is arranged in the bearing, and one end of the shaft rod is connected to the turbine vane.
[0013] In one embodiment, the distance from the bearing to the turbine vane is less than or equal to the distance from the bearing to the other end of the shaft rod.
[0014] In one embodiment, the length of the shaft rod of the rotating part ranges from 1mm to 300mm, and the diameter of the shaft rod of the rotating part ranges from 1mm to 100mm.
[0015] In one embodiment, the alcoholizer further comprises an external member connected to the other end of the shaft.
[0016] In one embodiment, the alcoholizer further comprises a housing having a channel space formed therein, the channel space having an upper opening and a lower opening.
[0017] In one embodiment, the housing further comprises a first housing and a second housing, the lower opening is formed at the bottom of the first housing, and a plurality of through holes are formed in a concentric circular ring manner around the lower opening.
[0018] In one embodiment, the upper opening is larger than the lower opening.
[0019] In one embodiment, the housing further has a water outlet outside the channel space. BRIEF DESCRIPTION OF DRAWINGS
[0020] Figure 1 Assembly diagram of the components of the present application.
[0021] Figure 2 Assembly diagram of the components of the present application.
[0022] Figure 3 Overall cross-sectional view of the present application.
[0023] Figure 4 Partial cross-sectional view of the present application.
[0024] Figure 5 Overall cross-sectional view of the present application.
[0025] Figure 6 Partial cross-sectional view of the present application.
[0026] Figure 7 Assembly diagram of the components of the present application.
[0027] Figure 8 Assembly diagram of the components of the present application.
[0028] Figure 9 Top view of the turbine blade of the present application.
[0029] Figure 10 Top view of the housing of the present application.
[0030] Figure 11 Assembly diagram of the components of the present application.
[0031] Figure 12 Assembly diagram of the components of the present application.
[0032] Figure 13For another embodiment (one) of the present application.
[0033] Figure 14 For an implementation diagram of embodiment (one) of the present application.
[0034] Figure 15 For a top view of the turbine blade of another embodiment (two) of the present application.
[0035] Figure 16 For a side view of the turbine blade of embodiment (two) of the present application.
[0036] Figure 17 For another embodiment (three) of the present application.
[0037] Figure 18 For a perspective view of the completed set of embodiment (three).
[0038] Figure 19 For an implementation diagram (one) of embodiment (three).
[0039] Figure 20 For an implementation diagram (two) of embodiment (three).
[0040] Figure 21 For an implementation diagram (three) of embodiment (three).
[0041] Figure 22 For another embodiment (four) of the present application.
[0042] Wherein, 10: alcoholator; 101: fixing member; 102: bearing; 1021: outer radius; 1022: outer diameter; 1023: inner diameter; 103: turbine blade; 1031: radius; 1032: blocking ring; 104: shaft; 1041: length; 1042: shaft diameter; 105: housing; 1051: passage space; 1052: upper opening; 1053: lower opening; 1054: water outlet; 1055: forcing member; 1056: first housing; 1057: second housing; 1058: radius; 1059: through hole; 106: external member; 107: external member; 1071: perforation; 1072: accommodation space; 11: container; 111: bottle mouth; 12: wine liquid; 13: wine bottle; 131: opening; 20: alcoholator; 201: fixing member; 202: bearing; 203: turbine blade; 204: outer housing; 2041: water outlet pipe; 2042: water outlet hole; 2043: connecting pipe; 2044: accommodation space; 2045: fixed part; 2046: cover body; 2047: through hole. DETAILED DESCRIPTION
[0043] Hereinafter, embodiments of the present application will be explained in detail with reference to the drawings.
[0044] The following description includes specific information about exemplary implementations of the application. The figures and accompanying detailed description of the application are merely intended to teach one skilled in the art sufficient information to enable practice of the application. Other implementations of the application are possible. Persons skilled in the art will recognize that certain elements of the described implementation can be interchanged with other elements without changing the technical operation and / or underlying principles of the application. The figures and examples herein are not intended to be exhaustive or otherwise limit the application to the explicit disclosure. The scope of the application is limited solely by the claims.
[0045] For purposes of clarity and understanding, identical reference numerals have been used in the illustrations and description to designate identical, like, and similar, elements in the respective drawings. However, the elements in different embodiments can be different in some respects, and thus should not be necessarily limited by the description of the drawings.
[0046] The terminology used in the description of the application herein is only used to describe specific embodiments and is not intended to limit the scope of the application. As used in the description of the application herein, the singular forms "a", "an" and "the" are intended to include the plural forms as well, unless the context clearly indicates otherwise. The terms "comprises" and / or "comprising," as used herein, specify the presence of stated features, regions, integers, steps, operations, components, and / or groups thereof, but do not preclude the presence or addition of one or more other features, regions, integers, steps, operations, components, components, and / or groups thereof.
[0047] The term "and / or" includes any and all combinations of one or more of the associated listed items. Although the terms "first", "second", and "third" can be used herein to describe various components, structures, regions, layers and / or sections, these terms are not intended to be limiting. These terms are only used to distinguish one component, structure, region, layer or section from another component, structure, region, layer or section. Thus, a first component, structure, region, layer or section discussed below could be termed a second component, structure, region, layer or section without departing from the teachings of the application.
[0048] Reference will now be made to Figure 1, the alcoholizer 10 for receiving fluid is shown in the figure, in at least one embodiment, the alcoholizer 10 can include a fixed part 101, a bearing 102, a turbine blade 103, wherein the fixed part 101 is provided with the bearing 102 and the turbine blade 103, the turbine blade 103 is movably connected with the fixed part 101 through the bearing 102, the bearing 102 can be a pearson bearing, but not limited to this, the bearing 102 is normally fixed in the fixed part 101, specifically, the outer part of the bearing 102 is fixed to the rear of the fixed part 101, and the inner end can still rotate by the driving of the external component; again, the turbine blade 103 is combined with the inner part of the bearing 102 in a movable group, and the outer part of the bearing 102 is fixed to the fixed part 101, so that the turbine blade 103 can rotate with the inner part of the bearing 102, so that the turbine blade 103 can rotate relative to the fixed part 101. Therefore, when the turbine blade 103 receives the fluid, the turbine blade 103 can drive the inner part of the bearing 102 to rotate. Further, the alcoholizer 10 can further include a shaft 104 and a shell 105, and the shaft 104 is arranged in the bearing 102, one end of which is connected with the turbine blade 103, and the fixed part 101, the bearing 102, the turbine blade 103 and the shaft 104 are further arranged in the shell 105, and the shell 105 can be sleeved with a pressing part 1055. Again, the bearing 102 can penetrate the shell 105, so that the other end of the bearing 104 relative to the turbine blade 103 can protrude out of the shell 105 and the pressing part 1055. In at least one embodiment, a part of the bearing 104 protruding out of the shell 105 can be coupled with an external component 106.
[0049] Please refer to Figure 2 , the complete assembly of the shell 105 is shown in the figure, please refer to Figure 1 , the figure is the scheme after the assembly of the above components, as can be seen from the figure, the shell 105 can be normally arranged on a container (not shown in the figure), and can be tightly clamped on the opening of the container through the pressing part 1055, please refer to Figure 1 and Figure 2 , Figure 1 , the fixed part 101, the bearing 102, the turbine blade 103 and the shaft 104 are all assembled in the shell 105, so that Figure 2The fixing member 101, the bearing 102, the turbine blade 103, and the shaft 104 are surrounded by the housing 105. In addition, the bottom of the shaft 104 has a bottom protrusion (not shown) protruding out of the housing 105, so that the bottom protrusion can be coupled with the external member 106 outside the housing 105.
[0050] Referring to Figure 3 As shown, it is a whole sectional view (I) of the present application. In at least one embodiment, the housing 105 has multiple housings. In at least one embodiment, the housing 105 can include a first housing 1056 and a second housing 1057. The second housing 1057 can be located outside the first housing 1056. Therefore, the second housing 1057 can be an outer housing, and the first housing 1056 can be an inner housing. There can be a gap between the first housing 1056 and the second housing 1057. In at least one embodiment, the gap can be a water outlet 1054 of the alcoholator 10, so that the fluid flowing through the turbine blade 103 of the alcoholator 10 can flow out through the water outlet 1054. In at least one embodiment, the fixing member 101, the bearing 102, the turbine blade 103, and the shaft 104 are arranged in the first housing 1056 of the housing 105 and surrounded by the first housing 1056. In at least one embodiment, the bottom protrusion of the shaft 104 penetrates the bottom of the housing 105, so that the bottom protrusion can be coupled with the external member 106 outside the housing 105. The radius 1031 of the turbine blade 103 is greater than or equal to the outer radius 1021 of the bearing 102, so as to ensure that the overall size of the turbine blade 103 is greater than the overall size of the bearing 102, i.e., the projected area of the turbine blade 103 is greater than the projected area of the bearing 102, so as to minimize the remaining fluid splashing on the bearing 102 when the turbine blade 103 receives the fluid, thereby avoiding damage to the bearing 102.
[0051] Referring to Figure 4As shown in FIG. 1, which is a partial cross-sectional view of the alcohol aging device 10, in at least one embodiment, the shaft 104 has a length 1041 ranging from 1 mm to 300 mm, preferably from 5 mm to 150 mm, and a diameter 1042 ranging from 1 mm to 100 mm, preferably from 1 mm to 50 mm. The shaft 104 is disposed in the bearing 102, i.e., the shaft 104 passes through the bearing 102 such that both ends of the shaft 104 are exposed above and below the bearing 102. Each end of the shaft 104 has a structure, such as a threaded structure, for locking another component. In one embodiment, one end of the shaft 104 is connected to the turbine vane 103, so that the turbine vane 103 can rotate synchronously with the shaft 104. In one embodiment, the distance between the bearing 102 and the turbine vane 103 is less than or equal to the distance between the bearing 102 and the other end of the shaft 104. In other words, if the turbine vane 103 does not abut the bearing 102, the distance between the turbine vane 103 and the bearing 102 should be greater than or equal to the distance between the bearing 102 and the other end of the shaft 104. In one embodiment, the bearing 102 has a coupling structure (not shown) between the interior of the bearing 102 and the shaft 104. When the shaft 104 rotates due to the rotation of the turbine vane 103, the shaft 104 drives the bearing 102 through the coupling structure, so that the interior of the bearing 102 can rotate with the shaft 104, while the exterior of the bearing 102 does not rotate.
[0052] As shown in FIG. 1, which is a partial cross-sectional view of the alcohol aging device 10, in at least one embodiment, the shaft 104 has a length 1041 ranging from 1 mm to 300 mm, preferably from 5 mm to 150 mm, and a diameter 1042 ranging from 1 mm to 100 mm, preferably from 1 mm to 50 mm. The shaft 104 is disposed in the bearing 102, i.e., the shaft 104 passes through the bearing 102 such that both ends of the shaft 104 are exposed above and below the bearing 102. Each end of the shaft 104 has a structure, such as a threaded structure, for locking another component. In one embodiment, one end of the shaft 104 is connected to the turbine vane 103, so that the turbine vane 103 can rotate synchronously with the shaft 104. In one embodiment, the distance between the bearing 102 and the turbine vane 103 is less than or equal to the distance between the bearing 102 and the other end of the shaft 104. In other words, if the turbine vane 103 does not abut the bearing 102, the distance between the turbine vane 103 and the bearing 102 should be greater than or equal to the distance between the bearing 102 and the other end of the shaft 104. In one embodiment, the bearing 102 has a coupling structure (not shown) between the interior of the bearing 102 and the shaft 104. When the shaft 104 rotates due to the rotation of the turbine vane 103, the shaft 104 drives the bearing 102 through the coupling structure, so that the interior of the bearing 102 can rotate with the shaft 104, while the exterior of the bearing 102 does not rotate. Figure 5 As shown in FIG. 1, which is a partial cross-sectional view of the alcohol aging device 10, in at least one embodiment, the shaft 104 has a length 1041 ranging from 1 mm to 300 mm, preferably from 5 mm to 150 mm, and a diameter 1042 ranging from 1 mm to 100 mm, preferably from 1 mm to 50 mm. The shaft 104 is disposed in the bearing 102, i.e., the shaft 104 passes through the bearing 102 such that both ends of the shaft 104 are exposed above and below the bearing 102. Each end of the shaft 104 has a structure, such as a threaded structure, for locking another component. In one embodiment, one end of the shaft 104 is connected to the turbine vane 103, so that the turbine vane 103 can rotate synchronously with the shaft 104. In one embodiment, the distance between the bearing 102 and the turbine vane 103 is less than or equal to the distance between the bearing 102 and the other end of the shaft 104. In other words, if the turbine vane 103 does not abut the bearing 102, the distance between the turbine vane 103 and the bearing 102 should be greater than or equal to the distance between the bearing 102 and the other end of the shaft 104. In one embodiment, the bearing 102 has a coupling structure (not shown) between the interior of the bearing 102 and the shaft 104. When the shaft 104 rotates due to the rotation of the turbine vane 103, the shaft 104 drives the bearing 102 through the coupling structure, so that the interior of the bearing 102 can rotate with the shaft 104, while the exterior of the bearing 102 does not rotate.
[0053] As shown in FIG. 1, which is a partial cross-sectional view of the alcohol aging device 10, in at least one embodiment, the shaft 104 has a length 1041 ranging from 1 mm to 300 mm, preferably from 5 mm to 150 mm, and a diameter 1042 ranging from 1 mm to 100 mm, preferably from 1 mm to 50 mm. The shaft 104 is disposed in the bearing 102, i.e., the shaft 104 passes through the bearing 102 such that both ends of the shaft 104 are exposed above and below the bearing 102. Each end of the shaft 104 has a structure, such as a threaded structure, for locking another component. In one embodiment, one end of the shaft 104 is connected to the turbine vane 103, so that the turbine vane 103 can rotate synchronously with the shaft 104. In one embodiment, the distance between the bearing 102 and the turbine vane 103 is less than or equal to the distance between the bearing 102 and the other end of the shaft 104. In other words, if the turbine vane 103 does not abut the bearing 102, the distance between the turbine vane 103 and the bearing 102 should be greater than or equal to the distance between the bearing 102 and the other end of the shaft 104. In one embodiment, the bearing 102 has a coupling structure (not shown) between the interior of the bearing 102 and the shaft 104. When the shaft 104 rotates due to the rotation of the turbine vane 103, the shaft 104 drives the bearing 102 through the coupling structure, so that the interior of the bearing 102 can rotate with the shaft 104, while the exterior of the bearing 102 does not rotate. Figure 6This is a partial cross-sectional view (II) of the present invention. As shown in this figure, the radius 1031 of the turbine blade 103 is limited to 2mm to 200mm, preferably 2mm to 80mm, while the outer diameter 1022 of the bearing 102 is limited to 4mm to 230mm, preferably 4mm to 80mm, and the inner diameter 1023 of the bearing 102 is limited to 4mm to 150mm, preferably 4mm to 50mm.
[0054] The present invention has two main implementation schemes, and the following description pertains to the first implementation scheme:
[0055] Please see Figure 7 The diagram below illustrates an embodiment of the present invention (I). In implementation, the outer casing 105 is pre-placed on the bottle neck 111 of a container 11, with the lower opening 1053 of the outer casing 105 passing through the bottle neck 111 and positioned inside the container 11. This completes the overall setup. The outer casing 105 can be further secured by the clamping member 1055. When the outer casing 105 is inserted into the container 11, the clamping action of the clamping member 1055 prevents the fluid inside the container 11 from flowing out of the bottle neck 111 during pouring. The user can then pour a liquid alcoholic beverage... The liquid 12 is poured into the outer casing 105 through the upper opening 1052, allowing the alcoholic liquid 12 to flow through the upper opening 1052 into the turbine blade 103 within the channel space 1051. When the turbine blade 103 receives the flowing alcoholic liquid 12, it can rotate, causing the turbine blade 103 and the bearing 102 to rotate. As the alcoholic liquid 12 is dispersed and rotated upon contact with the turbine blade 103, it mixes and agitates with air. The increased surface area of the alcoholic liquid in contact with air shortens the softening time, thus achieving a rapid aeration effect. In at least one embodiment, the user can control the pouring of the alcoholic liquid 12 into the first casing of the outer casing 105 to prevent the alcoholic liquid 12 from flowing directly into the container 11 through the outlet 1054. In at least one embodiment, the height of different parts of the first casing 1056 can be different. For example, as... Figure 7As shown, the shell wall of the first shell 1056 closer to the second shell 1057 can be lower. In at least one embodiment, the height of each part of the first shell 1056 can be similar to avoid the alcohol liquid 12 rebounding over the shell wall of the other end of the first shell 1056 due to the reaction force of the first shell 1056 when the alcohol liquid 12 pours into the first shell 1056, resulting in the rebounding alcohol liquid 12 directly flowing into the container 11 through the water outlet 1054. In at least one embodiment, in order to make the alcohol liquid 12 contact air as much as possible through the rotation of the turbine blade 103, the radius 1031 of the turbine blade 103 can be slightly smaller than the radius 1058 of the first shell 1056. The difference between the radius 1031 of the turbine blade 103 and the radius 1058 of the first shell 1056 should be greater than a difference threshold to avoid the turbine blade 103 directly rubbing against the first shell 1056 due to vibration and other factors, and to avoid the alcohol liquid 12 being affected by the turbine blade 103 again after contacting air through the rotation of the turbine blade 103, so that the alcohol liquid 12 cannot smoothly flow downward along the shell wall of the first shell 1056.
[0056] Please refer to Figure 8 , the external member 106 is connected to the other end of the shaft 104 away from the turbine blade 103, and the external member 106 can be any shape. The appearance of the external member 106 in this embodiment is only an example and is not limited to the shape of the external member 106. As shown in the figure, the external member 106 is connected to the other end of the shaft 104, and the external member 106 after being connected is normally located below the lower opening 1053 of the shell 105. Specifically, the alcohol liquid 12 is dispersed and rotated for the first time when it is pre-contacted with the turbine blade 103, and the alcohol liquid 12 after completing the first decanting process continues to flow downward and flows out of the lower opening 1053 of the shell 105. When the alcohol liquid 12 flows out of the lower opening 1053, it contacts the external member 106. Since the external member 106 is rotated by the turbine blade 103 through the shaft 104, the alcohol liquid 12 is dispersed and rotated again when it contacts the rotating external member 106, so that the alcohol liquid 12 is mixed and disturbed with air again to achieve the purpose of completing the second decanting process, so that the decanting effect of the alcohol liquid 12 is better. In an embodiment, to enhance the effect of the second decanting process, the bottom of the shell 105 can be further funnel-shaped (i.e., wide at the top and narrow at the bottom), so that the alcohol liquid 12 can be collected to flow out of the lower opening 1053, thereby providing more opportunities for the alcohol liquid 12 to contact the external member 106 to achieve better results for the second decanting process. Please refer toFigure 9 As shown in the turbine vane 103 of the present application, the arrangement between the blades of the turbine vane 103 is in close arrangement. As viewed from the top, the turbine vane 103 is seamless, i.e. the blades are partially overlapped. Thus, when the alcoholic liquid 12 contacts the rotating turbine vane 103, the alcoholic liquid 12 is prevented from contacting the bearing 102. Figure 10 As shown in the first housing 1056 of the present application, the first housing 1056 is provided with a plurality of through holes 1059 around the lower opening 1053. The through holes 1059 are arranged in concentric circles relative to the lower opening 1053. Further, the spacing between the through holes 1059 is uniform.
[0057] As shown in the turbine vane 103 of the present application, the arrangement between the blades of the turbine vane 103 is in close arrangement. As viewed from the top, the turbine vane 103 is seamless, i.e. the blades are partially overlapped. Thus, when the alcoholic liquid 12 contacts the rotating turbine vane 103, the alcoholic liquid 12 is prevented from contacting the bearing 102. Figure 11 Figure 12 As shown in the turbine vane 103 of the present application, the arrangement between the blades of the turbine vane 103 is in close arrangement. As viewed from the top, the turbine vane 103 is seamless, i.e. the blades are partially overlapped. Thus, when the alcoholic liquid 12 contacts the rotating turbine vane 103, the alcoholic liquid 12 is prevented from contacting the bearing 102.
[0058] As shown in the turbine vane 103 of the present application, the arrangement between the blades of the turbine vane 103 is in close arrangement. As viewed from the top, the turbine vane 103 is seamless, i.e. the blades are partially overlapped. Thus, when the alcoholic liquid 12 contacts the rotating turbine vane 103, the alcoholic liquid 12 is prevented from contacting the bearing 102. Figure 12 As shown in the turbine vane 103 of the present application, the arrangement between the blades of the turbine vane 103 is in close arrangement. As viewed from the top, the turbine vane 103 is seamless, i.e. the blades are partially overlapped. Thus, when the alcoholic liquid 12 contacts the rotating turbine vane 103, the alcoholic liquid 12 is prevented from contacting the bearing 102. Figure 7 The alcohol liquid 12 flows out from the inside of the container 11 along the water outlet 1054 towards the upper opening 1052, and can be guided to avoid flowing to the position of the lower opening 1053, so as to effectively prevent the bearing 102 or the shaft 104 and other components from being splashed by the alcohol liquid 12, thereby reducing the damage to the bearing 102 or the shaft 104. In at least one embodiment, if the outer member 106 is a rotating disc without holes, the outer member 106 itself also has the effect of blocking the alcohol liquid 12 from flowing to the position of the lower opening 1053. In addition, if the shaft 104 is located in the center of the first shell 1056, due to the presence of the second shell 1057 and the water outlet 1054, the outer member 106 is not located in the center of the bottle mouth 111. Therefore, if the radius of the outer member 106 is close to the radius 1058 of the first shell 1056, one side of the outer member 106 can be close to the bottle mouth 111, thereby enhancing the effect of blocking the alcohol liquid 12 from flowing to the position of the lower opening 1053. In this embodiment, when the radius of the outer member 106 is close to the radius 1058 of the first shell 1056, the distance between the side of the outer member 106 and the bottle mouth 111 can be greater than the shell thickness of the first shell 1056, or even greater than the sum of the shell thickness of the first shell 1056 and the thickness of the pressing member 1055.
[0059] Please refer to Figure 13 , another embodiment (one) of the present application is shown in the figure, the outer member 107 is shaped as a tube, and the bottom of the outer member 107 is provided with a plurality of perforations 1071; please refer to Figure 14 , the outer member 107 is shown in the figure, one end of the outer member 107 is locked with one end of the shaft 104, so that the outer member 107 is fixed to the bottom of the first shell 1056 in a normal state, and the inside of the outer member 107 forms a receiving space 1072, the opening end of the receiving space 1072 is located below the lower opening 1053, and further, the alcohol liquid 12 flowing out from the lower opening 1053 first flows into the receiving space 1072 of the outer member 107, and then further flows out from the perforations 1071, so as to achieve the effect of secondary wine awakening.
[0060] Please refer to Figure 15 , the figure is a top view of the turbine blade fan of another embodiment (two) of the present application, please refer to Figure 7 , the turbine blade fan 103 has gaps between the blades, and the turbine blade fan 103 is provided with a blocking ring 1032 below the blades; please refer to Figure 16, Figure is the turbine blade side view of the embodiment (two) of the present application, the blocking ring 1032 covers the bearing 102, so as to prevent the wine liquid 12 from contacting the bearing 102.
[0061] As described above, the present application is described for the second use: please refer to Figure 17 , as shown in the alcoholator 20, in at least one embodiment, the alcoholator 20 can include a fixed part 201, a bearing 202, a turbine blade 203, wherein the fixed part 201 is provided with the bearing 202 and the turbine blade 203, the turbine blade 203 is movably connected with the fixed part 201 through the bearing 202, the bearing 202 can be a pear bearing, but not limited to this, the bearing 202 is normally fixed in the fixed part 201, specifically, the bearing 202 is fixed in the fixed part 201, the outer end can still be driven to rotate by the external component; again, the turbine blade 203 and the outside of the bearing 202 are combined in the form of movable group, and the inside of the bearing 202 is fixed on the fixed part 201, therefore, the turbine blade 203 can drive the outside of the bearing 202 to rotate, so that the turbine blade 203 can rotate relative to the fixed part 201. Therefore, when the turbine blade 203 receives the fluid, the turbine blade 203 can drive the inside of the bearing 202 to rotate. Further, the alcoholator 20 can further include a housing 204, as shown in the figure, the outside of the housing 204 is provided with a water outlet pipe 2041, the front end of the water outlet pipe 2041 is curved and is formed with a plurality of water outlet holes 2042, and one end of the housing 204 relative to the water outlet pipe 2041 is provided with a connecting pipe 2043, the connecting pipe 2043 can be soft material, again, the housing 204 forms a containing space 2044, the containing space 2044 is communicated with the water outlet pipe 2041 and the connecting pipe 203 respectively, the bottom of the containing space 2044 is provided with a fixed part 2045, which can provide the fixed part 201 fixed, further, the housing 204 further includes a cover 2046, which can cover the opening of the containing space 2044 to the outside, so as to protect the components arranged in the containing space 2044.
[0062] Please refer to Figure 18 , as shown in the figure, the complete assembly of the embodiment (three) is shown, the scheme of the above components after the complete assembly is shown, from the figure, the connecting pipe 2043 of the housing 204 can be arranged in a wine bottle (not shown in the figure) under normal circumstances, and can be tightly clamped in the opening of the wine bottle through the soft characteristic of the connecting pipe 2043, please refer to Figure 17 , Figure 17The fixing member 201, the bearing 202, and the turbine blade 203 are all assembled in the accommodating space 2044 of the outer housing 204, so that Figure 17 The fixing member 201, the bearing 202, and the turbine blade 203 are all surrounded by the outer housing 204.
[0063] Please refer to Figure 19 For the implementation schematic diagram (one) of the embodiment (three), please refer to Figure 14 As shown in the figure, the outer housing 204 is fixed in the opening 131 of the wine bottle 13 through the connecting pipe 2043, so that the outer housing 204 is normally fixed at one end of the opening 131 of the wine bottle 13, and the inside of the wine bottle 13 is in communication with the accommodating space 2044 of the outer housing 204 through the connecting pipe 2043; please also refer to Figure 20 For the implementation schematic diagram (two) of the embodiment (three), as described above, when the wine liquid 12 in the wine bottle 13 is poured out from the opening 131, the wine liquid 12 will first flow into the accommodating space 2044 of the outer housing 204 through the connecting pipe 2043, and then flow in the direction of the water outlet pipe 2041. As can be seen from the figure, when the wine liquid 12 flows through the accommodating space 2044, it will drive the turbine blade 203 to rotate. When the turbine blade 203 receives the flowing wine liquid 12, it can make the turbine blade 203 and the bearing 202 rotate. When the wine liquid 12 is scattered and rotated by contacting the turbine blade 203, the wine liquid 12 and air can be mixed and disturbed. The wine liquid 12 can be shortened and softened due to the increase of the air contact area, thereby realizing the effect of rapid wine opening; please also refer to Figure 21 For the implementation schematic diagram (three) of the embodiment (three), the wine liquid 12 after wine opening flows in the direction of the water outlet pipe 2041, and can flow out from the water outlet holes 2042.
[0064] Please refer to Figure 22 For another embodiment (four) of the present application, please refer to Figure 20 As shown in the figure, the cover 2046 is formed with a plurality of through holes 2047 on the surface. The plurality of through holes 2047 are in communication with the accommodating space 2044. When the wine liquid 12 is poured out, air can enter the accommodating space 2044 through the plurality of through holes 2047, so that the pressure difference inside and outside the accommodating space 2044 is consistent, and the rotation of the turbine blade 203 is smoother.
[0065] The above describes the embodiments of the present application with reference to the drawings, but the specific configuration is not limited to the embodiments, and includes design changes and the like within the scope of the gist of the present application. Also, the present application can be variously changed within the scope of the claims, and embodiments obtained by appropriately combining the technical means disclosed in the respective embodiments are also included in the scope of the claims of the present application. Also, a configuration obtained by exchanging elements recited in the above embodiments with each other while maintaining the same effects is also included.
Claims
1. An alcoholizer for receiving a fluid, characterized by, Comprising: a fixing member, which is provided with a bearing; a turbine vane, which is movably connected to the fixing member through the bearing; wherein, when the turbine vane is configured to receive the fluid, the bearing is driven to rotate thereby; and a housing, which has a passage space for accommodating the fixing member, the bearing and the turbine vane, and has an upper opening and a lower opening, wherein the housing comprises a first shell and a second shell, the second shell partially surrounds the first shell, so that a gap is formed between the first shell and the second shell outside the passage space, the gap serves as a water outlet for the fluid to flow out after sequentially flowing through the upper opening, the turbine vane and the lower opening.
2. The alcohol still of claim 1, wherein, The radius of the turbine vane is greater than or equal to the outer radius of the bearing.
3. The alcohol still of claim 1 wherein, The outer diameter of the bearing ranges from 4mm to 230mm, and the inner diameter of the bearing ranges from 4mm to 150mm.
4. The alcohol still of claim 1 wherein, The radius of the turbine vane ranges from 2mm to 200mm.
5. The alcohol still of claim 1 wherein, The alcoholator further comprises a shaft rod, which is arranged in the bearing, one end of the shaft rod being connected to the turbine vane.
6. The alcohol still of claim 5, wherein, The distance from the bearing to the turbine vane is less than or equal to the distance from the bearing to the other end of the shaft rod.
7. The alcohol still of claim 5 wherein, The length of the shaft rod ranges from 1mm to 300mm, and the diameter of the shaft rod ranges from 1mm to 100mm.
8. The alcoholator of claim 5, further comprising an external member connected to the other end of the shaft rod.
9. The alcohol still of claim 1 wherein, The lower opening is formed at the bottom of the first shell, and a plurality of through holes are formed in a concentric circular ring arrangement around the lower opening.
10. The alcohol still of claim 1 wherein, The upper opening is larger than the lower opening.
Citation Information
Patent Citations
Decanter for bottled wine capable of shortening the softening time for the wine body by increasing the area of contact with the air, thereby achieving the purpose of rapid decanting
TW202000108A
An alcoholizer for receiving fluid
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Decanter for bottled wine
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