PORTABLE MILK FROTHER
20190216257 ยท 2019-07-18
Inventors
Cpc classification
A47J31/4489
HUMAN NECESSITIES
A47J31/4496
HUMAN NECESSITIES
A47J43/126
HUMAN NECESSITIES
International classification
Abstract
A handheld cylinder (103) capable of containing hot water. The cylinder has a pump 105 for pressurised the headspace above the hot water with air. The cylinder (103) also has a spout (109) which can be open and closed by a valve (500). When the pressurised air which has been warmed by the hot water is released from the spout (109), the air can be directed into a body of milk to swirl the milk in its container (109) to cause frothing and foaming of the milk.
Claims
1. A milk frother comprising: cylinder having a first end and a second end; a piston connected to the first end for pumping air into the cylinder; a spout provided at the second end for discharge of contents in the cylinder; the spout having a first spout end and a second spout end, the first spout end being outside the cylinder and the second spout end extending substantially into the cylinder; the second spout end being open for entry of contents in the cylinder; the first spout end of the spout having holes dimensioned and position to dispersion the contents in the cylinder leaving through the spout; a discharge valve for controlling release of contents in the cylinder through the spout.
2. A milk frother as claimed in claim 1, wherein the second spout end extending substantially at least half the length of the inner space of the cylinder.
3. A milk frother as claimed in claim 1, wherein the discharge valve is wirelessly controllable to open and close.
4. A milk frother as claimed in claim 3, further comprising a Bluetooth transceiver for allowing a smart device to control the discharge valve.
5. A milk frother as claimed in claim 1, wherein the discharge valve is wirelessly controllable to open and close.
6. A milk frother as claimed in claim 1, wherein the piston is removable.
7. A milk frother as claimed in claim 1, wherein the spout is removable.
8. A milk frother as claimed in claim 1, wherein the pump is provided with a pipe has a length that extends beneath the opening of the second spout end, such that the pump is able to introduce air into water contained in the cylinder.
9. A milk frother as claimed in claim 1, further comprising a temperature sensor to monitor the temperature of the headspace in the cylinder.
10. A milk frother as claimed in claim 1, further comprising a pressure sensor to monitor the pressure of the headspace in the cylinder.
11. A milk frother as claimed in claim 9, further comprising a wireless communication module for transmitting data relating to the temperature of the headspace.
12. A milk frother as claimed in claim 10, further comprising a wireless communication module for transmitting data relating to the pressure of the headspace.
Description
BRIEF DESCRIPTION OF THE FIGURES
[0015] It will be convenient to further describe the present invention with respect to the accompanying drawings that illustrate possible arrangements of the invention, in which like integers refer to like parts. Other arrangements of the invention are possible, and consequently the particularity of the accompanying drawings is not to be understood as superseding the generality of the preceding description of the invention.
[0016]
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
DETAILED DESCRIPTION OF EMBODIMENTS
[0023]
[0024] The milk frother 100 comprises a cylinder 103. The top of the cylinder 103 as shown is provided with a piston 105 for pumping air into the cylinder 103 to create pressurised air. The bottom of the cylinder 103 is provided with a spout 107 for discharging cylinder content.
[0025]
[0026]
[0027] In other embodiments, a different construction of handheld air pump may be used and the described pump 105 does not limit the invention.
[0028]
[0029] The spout 107 of the portable milk frother 100 comprises a base 401 which can be screwed onto the lower end of cylinder 103 as shown. The base 401 is round and shaped like a disc which is convenient for being screwed over the mouth of the cylinder 103. The spout 107 passes through the centre of the base 401, and extends a certain distance on either side of the base 401.
[0030] The length of the part of the spout which extends into the cylinder 103 determines the level of hot water which may be contained in the cylinder 103 without the water running over into the spout. This inner end 403 of the spout is open to allow free flow of air and steam into the spout.
[0031] The other end 405 of the spout which is outside the cylinder 103 is closed except for a few holes 407 at the tip of the spout. The holes are arranged such that they each diverge fluid passing through them away from the axis of the spout, which form a spray 409 having an angle alpha () whereby pressurised fluids dispelling through the holes are directed into diverging directions.
[0032] A discharge valve 500 is provided, which opens or closes the passage of fluid flow through the spout. In one embodiment, as demonstrated in
[0033] To use the milk frother 100, the pump 105 on the cylinder 103 is firstly removed and the cylinder 103 is filled with hot water 411 almost up to the inner spout end 403 but falling short of spilling over into the spout. The pump 105 is then restored tightly over the cylinder 103 by screwing. The hot water 411 inside the cylinder 103 warms up the air in the headspace 413 above the hot water 411. The pump 105 is used to pump more air into the cylinder 103 manually, by moving the piston towards and away from the cylinder 103 repeatedly. When a desired pressure has built up in the cylinder 103, the discharge valve 500 is opened to allow the escape of the hot, pressurized air through the multiple holes in the spout. The holes cause the hot air to be dispelled in the form of an air spray, which contributes to creating bubbles in milk effectively.
[0034] In one embodiment, the temperature of water inside the cylinder 103 is of 80 degree Celsius or higher, and the desired pressure is 3 Bar (approximately 3 times 750.06 mmHg). However, other temperatures may be used as the user sees fit.
[0035] In variation of the embodiment, the cylinder 103 further comprises a temperature sensor 205, a pressure sensor 207 and a first Bluetooth communication device 209. The temperature sensor 205 is used to measure the temperature of water inside the cylinder 103. Preferably, the temperature sensor 205 is installed closer to the bottom of the cylinder 103 than the top of the cylinder 103 in order to ensure contact with water. Conversely, the pressure sensor 207 is installed nearer the top of the cylinder, i.e. nearer the pump 105, in order to ensure measurement of the pressure of the headspace. Readings of the temperature and pressure inside the cylinder 103 are sent via the first Bluetooth communication device 209 to a software application running on a smart device 109, such as a smart phone or a portable computer tablet. In this way, the user is able to manage the temperature and pressure of the headspace.
[0036] Preferably, the disc of the discharge valve 500 is controlled by a step-motor installed into the cylinder, which is in turn controlled by a second Bluetooth communication device 211 also installed into the cylinder. The second Bluetooth communication device 211 controls the step-motor to open and close the discharge valve 500.
[0037] Preferably, when the pressure inside the cylinder 103 has been not built up to a pre-determined pressure, the discharge valve 500 cannot be opened, whether manually or by Bluetooth actuation. When the pressure inside the cylinder 103 reaches the pre-determined pressure, the software application in the smart device 109 permits the user to send a control signal to the second Bluetooth communication device 211 to open the discharge valve 500 electronically, which releases pressurized hot air through the spout 107. Alternatively, a visual or audio alarm is raised by the software application informing the user to operate the discharge valve 500 manually, or to use the smart device 109 manually to operate the discharge valve 500.
[0038] The steps to make froth milk by the portable milk frother 100 are as follow. [0039] 1. Install the spout 107 to the bottom of the cylinder 103 by screwing the base 401 holding the spout 107 over the bottom of the cylinder 103 to close the cylinder 103; [0040] 2. Ensure that the discharge valve 500 is switched into the closed position. This may be accomplished by switching the discharge valve 500 manually, or electronically by Bluetooth using a smart device 109. [0041] 3. Pour hot water into the cylinder 103. Preferably, the water has a temperature of 80 degree Celsius or higher, and the volume of water is about of the capacity of the cylinder 103. For example, if the internal capacity of the cylinder 103 is 1000 ml, the hot water used is 200 ml. In a picnic, the user need only carry a thermos flask containing hot water to use with the embodiment. [0042] 4. Screw the handheld sir pump 105 to the top of cylinder 103 to close the cylinder 103 hermetically. [0043] 5. Set the desired pressure on the software application running on the smart device 109. For example, the desired pressure may be set to 3 bar. The application running on the smart device 109 provides reading of the current temperature and pressure inside the cylinder 103. [0044] 6. Using the handheld air pump 105, the user manually pumps air into the cylinder 103 to increase the pressure of the headspace in the cylinder 103. [0045] 7. On detecting that the pressure of the headspace has reached the pre-determined level, the software application running on the smart device 109 operates the discharge valve 500 to open the passage through the spout 107 automatically. [0046] 8. When the spout 107 is opened, a spray of pressurized air and steam is released from the multiple holes of the tip of the spout 107. If the tip of the spout 107 is submerged below the surface of the milk, the mixing with air and spinning of the milk creates a frothing process.
[0047]
[0048]
[0049] While there has been described in the foregoing description preferred embodiments of the present invention, it will be understood by those skilled in the technology concerned that many variations or modifications in details of design, construction or operation may be made without departing from the scope of the present invention as claimed.
[0050] For example, the cylinder is provided with a jacket that retards dissipation of heat into the surroundings.
[0051] Also, the pump can be a battery operated, portable pump.