Airlift Pumping Mechanism as well as Fluid Container and Brewing Machine with such Airlift Pumping Mechanism
20170290455 ยท 2017-10-12
Assignee
Inventors
Cpc classification
A47J31/56
HUMAN NECESSITIES
International classification
Abstract
This invention discloses an airlift pumping mechanism for a fluid container, which is intended to address the problem of decreasing efficiency of the pumping mechanism when the liquid level in the container is low in the prior art. For this purpose, the airlift pumping mechanism comprises an air compressor and a riser tube assembly, wherein the riser tube assembly is located in a fluid container, and the air compressor is in communication with the riser tube assembly for feeding the compressed air to the riser tube assembly so that the same flows upward through the riser tube assembly together with the fluid in the fluid container. The pumping mechanism is characterized by further comprising a sunken cavity downwardly extending from the inner bottom surface of the fluid container, wherein the sunken cavity is located between the air compressor and the riser tube assembly and is in communication with the air compressor and the riser tube assembly. Due to the downward extension of the sunken cavity from the bottom surface of the container, the submergence ratio of the pumping mechanism can be significantly increased, thereby greatly increasing the pumping efficiency of the pumping mechanism at various liquid levels.
Claims
1. An airlift pumping mechanism for a fluid container comprising an air compressor and a riser tube assembly, wherein the riser tube assembly is located within the fluid container and communicated with the air compressor to feed the compressed air into the riser tube assembly and flow upward through the riser tube assembly along with the fluid in the fluid container, characterized in that, the airlift pumping mechanism further comprises a sunken cavity that extends downwards from the inner bottom surface of the fluid container and is located between and communicated with the air compressor and the riser tube assembly.
2. The airlift pumping mechanism as set forth in claim 1, characterized in that, the riser tube assembly includes a riser tube and a bottom baffle connected to the bottom of the riser tube, wherein the bottom baffle is hermetically inserted into the sunken cavity when the riser tube assembly is in use, so that the sunken cavity is separated into a cavity body and a fluid intake channel that are communicated with each other, and the fluid within the fluid container flows through the fluid intake channel into the cavity body of the sunken cavity to mix with the compressed air from the air compressor.
3. The airlift pumping mechanism as set forth in claim 2, characterized in that, the airlift pumping mechanism further comprises a horizontally-oriented air inlet channel, which is provided between the cavity body of the sunken cavity and the air compressor to feed the compressed air from the air compressor into the cavity body.
4. The airlift pumping mechanism as set forth in claim 3, characterized in that, the fluid container includes a heater provided on the inner bottom surface of the fluid container, and the riser tube is vertically located at the side of the heater.
5. The airlift pumping mechanism as set forth in claim 1, characterized in that, the heater is a flat heater, and the riser tube is located near the outer edge of the flat heater.
6. The airlift pumping mechanism as set forth in claim 1, characterized in that, the riser tube includes a plurality of internal channels.
7. The airlift pumping mechanism as set forth in claim 1, characterized in that, the fluid container further includes an infuser located near its top opposed to the heater, and the infuser is communicated with the top of the riser tube, so that the upward flow finally enters into the infuser through the riser tube under the action of the compressed air.
8. The airlift pumping mechanism as set forth in claim 7, characterized in that, the air inlet channel is located so that the distance between the lower edge of the air inlet channel and the bottom surface of the sunken cavity is equivalent to the diameter of the air inlet channel or is 3 mm, and that this distance is larger than that between the lower edge of the bottom baffle and the bottom surface of the sunken cavity.
9. A fluid container, characterized by comprising the airlift pumping mechanism as set forth in claim 1.
10. A brewing machine, characterized by comprising the airlift pumping mechanism as set forth in claim 1.
11. The airlift pumping mechanism as set forth in claim 3, characterized in that, the air inlet channel is located so that the distance between the lower edge of the air inlet channel and the bottom surface of the sunken cavity is equivalent to the diameter of the air inlet channel or is 3 mm, and that this distance is larger than that between the lower edge of the bottom baffle and the bottom surface of the sunken cavity.
12. The airlift pumping mechanism as set forth in claim 4, characterized in that, the air inlet channel is located so that the distance between the lower edge of the air inlet channel and the bottom surface of the sunken cavity is equivalent to the diameter of the air inlet channel or is 3 mm, and that this distance is larger than that between the lower edge of the bottom baffle and the bottom surface of the sunken cavity.
13. The airlift pumping mechanism as set forth in claim 5, characterized in that, the air inlet channel is located so that the distance between the lower edge of the air inlet channel and the bottom surface of the sunken cavity is equivalent to the diameter of the air inlet channel or is 3 mm, and that this distance is larger than that between the lower edge of the bottom baffle and the bottom surface of the sunken cavity.
14. The airlift pumping mechanism as set forth in claim 6, characterized in that, the air inlet channel is located so that the distance between the lower edge of the air inlet channel and the bottom surface of the sunken cavity is equivalent to the diameter of the air inlet channel or is 3 mm, and that this distance is larger than that between the lower edge of the bottom baffle and the bottom surface of the sunken cavity.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0033] What has to be explained beforehand is that, technical solutions in the invention will be described below in connection with a brewing machine and an airlift pumping mechanism for the brewing machine. However, as should be readily understood by those skilled in the art, apparently technical solutions in the invention can be applied to other fluid containers such as coffee maker and other fields for example oil and gas exploration and wastewater treatment, etc, without altering the principles of the present disclosure. These changes don't depart from the principles of the invention and don't need any creative work, and therefore they are also intended to be within the scope of protection disclosed by the invention.
[0034] Specifically, the invention provides an airlift pumping mechanism for a brewing machine. The airlift pumping mechanism comprises an air compressor and a riser tube assembly which is located within the brewing machine and communicated with the air compressor to let the compressed air enter into the riser tube and flow upward through the riser tube assembly along with the fluid in the brewing machine. The airlift pumping mechanism is characterized by also comprising a sunken cavity that extends further downwards from the inner bottom surface of the brewing machine and is located between and communicated with the air compressor and the riser tube assembly. Accordingly, the numerator H.sub.w and the denominator H.sub.s in the above mentioned representation is increased simultaneously so that the value of the submergence ratio and therefore the pumping efficiency of the pumping mechanism at various liquid levels are drastically increased, since the airlift pumping mechanism of the invention comprises a sunken cavity extending further downwards from the inner bottom surface of the brewing machine. Especially when there is less fluid remained within the brewing machine, that is, when the liquid level is lower, the submergence ratio will be increased more obviously. Therefore, compared with the prior art, the above described technical solutions of the invention will be able to increase the pumping efficiency of the airlift pumping mechanism.
[0035] The new pumping mechanism of the invention and its operational principles are described in detail below with reference to the accompanying figures. Referring first to
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[0042] Because a fan-shaped air collector is not provided in the present invention, the riser tube 15 is able to be placed closer to the sidewall of the container body 11, thereby opening up more options in general structural configuration, such as larger diameter and internal volume for the infuser 14. Also, as particularly shown in
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[0044] When the air from the horizontally-oriented air inlet channel 19 is injected into the sunken cavity 18, it mixes with the fluid in the cavity and therefore the buoyancy force of the mixture increases, thereby creating an upward lifting force. As the bottom baffle 17 maintains a tight fit with the sidewalls of the sunken cavity 18, the liquid-air mixture would be pushed up the riser tube 15 through its internal channels. The elevated water would exit the riser tube 15 to enter into the infuser 14, and would eventually return to the container body 11 with the increase of the liquid level in the infuser 14. Water from the container body 11 will flow down the fluid intake channel 181 of the sunken cavity and pass through the gap 182 to fill the sunken cavity 18.
[0045] As previously discussed, the pumping efficiency of the airlift pumping mechanism depends on the submergence ratio. As for the pumping mechanism of the invention, the dimensions of the sunken cavity 18 need to be considered to calculate the submergence ratio.
TABLE-US-00001 TABLE 1 Length of the Depth New riser Liquid of the Original submergence tube level cavity submergence ratio Difference (mm) (mm) (mm) ratio (mm) e = (b + c)/(a + c) % e-d 140 60 40 42.86% 55.56% 12.70% 140 50 40 35.71% 50.00% 14.29% 140 40 40 28.57% 44.44% 15.87% 140 30 40 21.43% 38.89% 17.46% 140 20 40 14.29% 33.33% 19.05%
[0046] The horizontally-oriented air inlet channel 19 is located at a small distance above the bottom surface of the sunken cavity 18. Therefore, when the brewing machine 1 is drained after use by pouring, it is easy to expel liquid remaining inside the air inlet channel 19. Also, liquid drops remaining inside the sunken cavity 18 would settle at the bottom of the sunken cavity 18 rather than inside the air inlet channel 19, as a result the hygiene problems faced by the pumping mechanisms in the prior art are avoided.
[0047] So far, though the technical solutions of the present invention has been described in connection with the preferred embodiments shown in the accompanying figures, it should be readily appreciated that the protection scope of the invention is obviously not limited to these specific embodiments. Without departing from the principles of the invention, equivalent alterations to or substitutions of related technical features can be made by those skilled in the art, these altered or substituted technical solutions are intended to be within the scope of the invention.