The present invention relates to a percolating machine for making a beverage from powdered material inside a container.
More specifically, the present invention relates to a percolating machine for making a beverage from powdered material inside a container, the machine comprising a frame; a first member comprising a seat for at least partly housing said container; and a second member facing the first member and comprising a pressurized-hot-water sprinkler; the first and second member being fitted movably to the frame, and a transmission being interposed between the first and second member to move the first and second member along a first axis, with respect to each other and to the frame, to and from an infusion position, in which the container, housed, in use, inside said seat, is gripped in fluidtight manner against the sprinkler. Percolating machines of the type described above are known, for example, from U.S. Pat. No. 6,505,544 and U.S. Pat. No. 4,220, 259.
Though the machine according to the present invention is designed to percolate any type of beverage produced by feeding pressurized hot water through a relative powdered or substantially anhydrous granulated food substance inside a container, specific reference is made in the following description, purely by way of example, to a machine for making a coffee beverage using a container containing a respective measure of ground coffee.
It is an object of the present invention to provide a beverage percolating machine of the above type, which is cheap and easy to produce, and which provides for moving the first and second member rapidly into the infusion position.
According to the present invention, there is provided a percolating machine for making a beverage, as claimed in claim 1 and, preferably, in any one of the following Claims depending directly or indirectly on claim 1.
The invention will now be described by way of examples with reference to the accompanying drawings, in which:
Number 1 in
Machine 1 comprises a frame 3, in turn comprising two substantially rectangular plates 4 positioned symmetrically on opposite sides of and parallel to a horizontal axis 5, and connected to each other, at one longitudinal end, by a transverse wall 6.
Between the two plates 4, are housed, facing each other, a thrust assembly 7 located close to transverse wall 6; and a hot-water dispenser 8, which is aligned with thrust assembly 7 along axis 5, is mounted to move along axis 5, and comprises a known boiler (not shown) supplied with pressurized water by a known pump (not shown), and a sprinkler 9 connected to the boiler and supplied by the boiler with pressurized hot water via a known one-way valve (not shown) calibrated to open when the pressure upstream from the one-way valve reaches a given value.
With reference to
Piston 11 is also connected to dispenser 8 by a transmission 12, which, as explained in detail below, moves dispenser 8 along axis 5 in response to displacement of piston 11 along axis 5.
As shown in more detail in
On the side facing thrust assembly 7, cup-shaped body 13 comprises a central cavity 16 coaxial with axis 5 and bounded along its free edge by a flat annular surface 17 crosswise to axis 5.
A plate 18 is fitted inside cavity 16, coaxially with axis 5, and comprises, on the surface facing piston 11, a number of grooves 19 along which is distributed, in use, pressurized water fed to grooves 19 along a feed conduit 20 formed axially through plate 18 and cup-shaped body 13.
Piston 11 has an end portion which, even when piston 11 is in the withdrawn position, projects from tubular body 10, and which is bounded, on the side facing sprinkler 9, by a flat surface 21 crosswise to axis 5. A truncated-cone-shaped seat 22, for housing a container 2, is formed in surface 21, coaxially with axis 5, and communicates with the outside along a drain conduit 23 formed through a percolating spout 24.
With reference to
As shown in
As shown in
More specifically, each cross member: 31 comprises two rocker arms 32 hinged at respective intermediate points to a relative plate 4 by a pin 33 to oscillate about a horizontal axis 34 perpendicular to axis 5.
As shown in
The two pins 36 of each plate 25 are connected to each other by a respective bar 37 crosswise to axis 5 and parallel to relative plate 4. A respective L-shaped bracket 38 is welded to each bar 27 and, together with the other bracket 38, forms part of a piston return device comprising, in addition to brackets 38, two springs 39 for restoring piston 11 from the extracted to the withdrawn position, once pressurized-water supply to chamber 28 ceases, and which are wound about respective pins 40 parallel to axis 5 and connected at one end to relative brackets 38 and at the opposite end to frame 3.
In connection with the above, it should be pointed out that, in an alternative embodiment (not shown), transmission 12 may comprise only one cross member 31, i.e. one pair of rocker arms 32 hinged to one of the two plates 4.
It should also be pointed out that, on machine 1 as described above and illustrated in
Machine 1, however, can also be used with a container 2 in the form of a known sealed capsule, i.e. defined by a cup-shaped body comprising an end wall, and a truncated-cone-shaped lateral wall having annular flange 41 and sealed in fluidtight manner by a sealing wall 42—normally of foil—peripherally integral with the outer surface of annular flange 41.
When sealed capsules of this sort are used, percolating machine 1 is equipped with piercing devices for piercing the sealed capsule to allow pressurized water into, and the beverage to flow out of, the capsule.
In the
With reference to
In the
Since, in the latter case, water is injected into container 2, and the beverage extracted (in known manner), on the same side of container 2, percolating spout 24 is connected to cup-shaped body 13 of sprinkler 9, as opposed to tubular body 10 of the hydraulic cylinder (as in the
Operation of machine 1 will now be described with reference to the
When machine 1 is operated by the user, pressurized water is pumped into chamber 28 along feed conduit 30, thus moving piston 11 from the withdrawn to the extracted position.
As piston 11 moves along axis 5, pins 36 integral with plates 25 of piston 11 begin sliding along respective slots 35, and so push rocker arms 32 of each cross member 31 in opposite directions about axis 34; which rotation is made possible by pins 36 integral with plates 14 simultaneously sliding along respective slots 35.
As rocker arms 32 contract “scissor-fashion”, dispenser 8 is moved towards thrust assembly 7 to bring the two gradually together; and, as piston 11 moves towards sprinkler 9, container 2 is gradually inserted inside seat 22.
By the time piston 11 reaches the extracted, i.e. infusion, position (
The sharp rise in pressure, at this point, inside chamber 28 and in the hydraulic circuit portion upstream from the one-way valve (not shown) opens the one-way valve, so that pressurized hot water flows into container 2 along feed conduit 20, the ground coffee is percolated, and the coffee beverage flows out of percolating spout 24 along drain conduit 23.
Upon the user pressing a stop button (not shown), the water supply is cut off, and piston 11 is backed up into the withdrawn position by the return action of springs 39.
As when moving forward, the withdrawal movement of piston 11 rotates rocker arms 32 in opposite directions about axis 34, and in reverse directions to before, to “expand” each cross member 31 and so move dispenser 8 and piston 11 away from each other.
In the case of the
In a variation not shown, machine 1 may be vertical, i.e. axis 5 may be vertical as opposed to horizontal.
To conclude, by virtue of transmission 12 moving dispenser 8 by the same amount as and in the opposite direction to piston 11, the distance piston 11 would otherwise have to travel between the withdrawn and infusion position, if dispenser 8 were fixed to frame 3, is halved.
Halving the travel of piston 11 obviously also halves the time taken by piston 11 to move from the withdrawn to the infusion position.
For the reasons stated, the above time reduction obviously has the advantage of directly reducing the time lapse between the user loading a container 2 and starting machine 1, and the coffee beverage actually being dispensed.
Number | Date | Country | Kind |
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TO2005A 000209 | Mar 2005 | IT | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP2006/061097 | 3/28/2006 | WO | 00 | 4/8/2009 |