The present invention relates to a boiler for heating a liquid, in particular water.
More specifically, the present invention relates to a boiler of the type comprising at least one module, in turn comprising a conduit having two open opposite axial ends; two removable caps for closing respective axial ends, and each having a central through hole; an electric resistor fitted through the central through holes in the caps, and extending the full length of the conduit to define, between itself and the conduit, an annular-section channel of the same length as the conduit; and a tubular inlet fitting and tubular outlet fitting, which communicate with the annular-section channel, are complementary in shape, and located close to the opposite axial ends of the annular-section channel.
Boilers of this sort are described, for example, in DE-196 13 579, DE-20 2004 009 349 U1, EP-1 316 762 and, in particular, EP-1 653 163.
The present invention is particularly advantageous for use in applications requiring repeat supply of a given amount of liquid, normally water, at a relatively high temperature, and in particular in hot-beverage vending machines, to which the following description refers purely by way of example.
Hot-beverage vending machines need boilers of the above type which are not only capable of producing hot water in varying amounts and at different temperatures, depending on the beverages selected, but can also be opened and inspected easily for fast, easy maintenance and cleaning, as required when the hot water, as in the case of vending machines, is meant for consumption.
In known boilers of the above type, the inlet and outlet fittings are normally fitted to the caps.
This makes the fittings easier to orient when installing multiple-module boilers, but has the drawback that any maintenance or cleaning work, for which the caps must be removed, necessarily calls for dismantling the whole boiler.
Moreover, because the electric resistors of known boilers of the above type are through-fitted, for safety reasons, with their terminals outside the boiler body, each end of each module requires two different sealing systems—one between the cap and the resistor, and the other, which is particularly complex, between the cap and the conduit—both of which must be removed completely for access to the inside of the boiler.
It is an object of the present invention to provide a boiler, preferably a modular boiler, designed to eliminate the above drawbacks and enable fast, easy maintenance and cleaning.
According to the present invention, there is provided a liquid-heating boiler as claimed in claim 1 and preferably in any one of the following Claims depending directly or indirectly on claim 1.
A non-limiting embodiment of the invention will be described by way of example with reference to the accompanying drawings, in which :
Number 1 in
Boiler 1 is a modular boiler defined by one or more identical, releasably series-connected modules 2.
As shown more clearly in
Resistor 7 extends the full length of conduit 3, has end portions projecting from conduit 3 and each fitted with an electric terminal 8, and is fitted to an inner surface 9 of conduit 3 with the interposition of two annular seals 10, each of which is fitted to shielded resistor 7, is located close to a respective cap 5, and is locked axially to cap 5 by a spacer 11, so that, when each cap 5 is fitted to the respective end of conduit 3, respective seal 10 deforms, thus locking resistor 7 in fluidtight manner to inner surface 9 of conduit 3 and to the inner surface of respective cap 5, at respective hole 6.
Inside conduit 3, resistor 7 defines an annular-section channel 12 divided into two axial portions by an annular rib 13 (
Each module 2 comprises a tubular inlet fitting 15 and a tubular outlet fitting 16, each extending radially outwards from conduit 3, close to relative cap 5. More specifically, tubular inlet and outlet fittings 15, 16 have respective axes 17, 18, which intersect axis 4 and, when projected in a plane perpendicular to axis 4, form an angle of 180°, in the example shown, but which may range from 0° to 180°.
As shown in
One of the two tubular fittings—in the example shown, tubular inlet fitting 15—has an outside diameter slightly smaller than the inside diameter of the other tubular fitting—in the example shown, tubular outlet fitting 16—and has, on its outer surface, an annular groove engaged by an annular seal 21. Similarly, the other tubular fitting—in the example shown, tubular outlet fitting 16—has, on its outer surface, an annular groove engaged by an annular seal 22.
In a variation not shown, boiler 1 comprises one module 2, the tubular inlet fitting 15 of which is connectable to a water supply, and the tubular outlet fitting 16 of which is connectable to a user device.
In the
The outlet of boiler 1 is preferably connected indirectly to a user device by a hydraulic joint 23 comprising a conduit, one end portion 24 of which fits in fluidtight manner onto the outlet of boiler 1, and another end portion 25 of which is engaged in fluidtight manner by a temperature-control probe 26. In an intermediate position between end portions 24 and 25, hydraulic joint 23 has a radial outlet fitting 27.
In actual use, the water for heating flows into boiler 1 through inlet fitting 15 of module 2a, and, as it flows along channels 12 of modules 2a, 2b, 2c to fitting 27 of hydraulic joint 23, is heated by respective resistors 7, the power of which is set according to the desired water temperature.
In connection with the above, it is important to note the high degree of versatility of boiler 1, which, by virtue of its modular design, is easily adaptable to different requirements in terms of both the amount of water to produce at a given temperature, and the final water temperature. That is, given the heating power of a module 2, boiler 1 can be ‘sized’ to a specific application by simply assembling the appropriate number of modules 2. For example, for a given final water temperature, boiler 1 can produce amounts of hot water in direct proportion to the number of modules 2 of which it is composed.
Resistors 7 are preferably activatable independently, to permit control of final water temperature for a given number of modules 2 of boiler 1.
Boiler 1 may be variously configured, depending on how modules 2 are assembled, for easier location of boiler 1 and more efficient use of the space inside the vending machine. In
Other configurations of boiler 1, different from those obtainable from boiler 1 shown in the attached drawings, can be obtained, for example, using modules 2, in which axes 17 and 18 form an angle other than 180°. In which case, it is possible, for example, to obtain a substantially curved boiler 1.
A high degree of versatility, in terms of assembly, is obtainable using the
In
In variations not shown, tubular outlet fitting 16 or both tubular fittings may be orientable.
In both the
Moreover, the inside of conduit 3 can be inspected and accessed by simply moving caps 5 slightly from the closed position to relax seals 10 and so free resistors 7, which can thus be simply withdrawn through caps 5.
Number | Date | Country | Kind |
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TO2010A000351 | Apr 2010 | IT | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/IB11/00908 | 4/27/2011 | WO | 00 | 12/7/2012 |