Apparatus and method for managing water levels in a boiler of a coffee machine
10154754 ยท 2018-12-18
Assignee
Inventors
Cpc classification
A47J31/56
HUMAN NECESSITIES
International classification
G01F23/00
PHYSICS
A47J31/56
HUMAN NECESSITIES
A47J31/46
HUMAN NECESSITIES
Abstract
An apparatus for managing water levels in a boiler of a coffee machine is provided. The boiler is connected to a control circuit and includes a first probe arranged, in use, to measure a first water level and at least a second probe arranged to measure a second water level, or working level of the apparatus, higher than the first level. apparatus is arranged to supply steam or hot water through respective ducts connected to the boiler and controlled by respective valves. The first probe is configured for measuring a draining level of the boiler on the basis of draining commands generated by the control circuit and for automatically enabling water replacement in the boiler.
Claims
1. An apparatus for managing water levels in a boiler of a coffee machine, comprising: a boiler providing a container for a volume of water; heating members for heating water contained within the boiler; at least a first probe arranged to measure a first water level in the boiler; at least a second probe arranged to measure a second water level, or working level of the apparatus, higher than the first level; ducts connected to the boiler through which steam or hot water is supplied from the boiler; valves connected to the ducts for controlling passage of the steam or hot water through the ducts; and a control circuit including a microprocessor circuit for electronically controlling operation of the boiler via connections to the first probe, second probe, heating elements, and valves; wherein said first probe is configured for measuring said first water level as a level of complete draining of the boiler on the basis of draining commands generated by the control circuit and for automatically enabling a subsequent filling of the boiler; wherein said second probe is arranged to measure, under control of the control circuit, as the second water level a minimum level representing a minimum working level at which the apparatus is completely operative in low usage and minimum power consumption conditions for heating the water in the boiler; and wherein said control circuit is configured to switch on a limited number of the heating members and reduce power and maintain almost unchanged a ratio power/water volume in case of steam or hot water consumption when the minimum working level of water within the boiler is verified by the second probe.
2. The apparatus according to claim 1, wherein said first probe is further arranged to measure, when the apparatus is in use, said first water level as the level at which the apparatus is stopped by the control circuit.
3. The apparatus according to claim 1, wherein said boiler is connected to a draining duct controlled by an electrically controlled draining valve, and a filling duct controlled by a pump and by an electrically controlled filling valve configured for being managed by the control circuit arranged to successively command the draining of the boiler by opening the electrically controlled draining valve, and the filling of the boiler by actuating the pump and the electrically controlled filling valve.
4. The apparatus according to claim 1, further comprising: a third probe arranged to transmit a signal representing a level higher than the second water level, namely a maximum working level at which the apparatus is completely operative under high usage and power consumption conditions for heating the water in the boiler.
5. A method for managing water levels in a boiler of a coffee machine, comprising the steps of: verifying by means of a control circuit or manually that the apparatus is in a rest condition; starling a process of boiler draining/filling controlled by the control circuit, comprising the steps of: commanding the opening of a draining valve; verifying with a first probe that the water has reached a predefined minimum level; closing the draining valve; opening a filling valve and starting a pump connected to a water system; verifying with at least a second probe that at least a predefined filling level of the boiler has been reached; closing the filling valve and stopping the pump; starting a process for heating the water in the boiler as a function of the predefined filling level of the boiler that has been reached, wherein, when the predefined filling level is a minimum working level of the boiler, the control circuit switches on a limited number of heating members of the boiler and reduces a power and maintains almost unchanged a ratio power/water volume in case of steam or hot water consumption.
6. The method according to claim 5, wherein said verifying steps provide that the control circuit verifies with a probe the reaching of a predetermined level within a predetermined time.
7. The method according to claim 5, wherein during the process of draining the boiler, the step of verifying with a first probe that the water has reached a predetermined minimum level comprises the steps of: starting a counter associated to a predetermined time value required for the water to reach a predefined minimum level; in case said predefined minimum level is not reached within the predetermined time: activating a warning signal and stopping the draining process as if the draining were regularly finished.
8. The method according to claim 5, wherein during the process of filling the boiler, the step of verifying with at least a second probe that the water has reached a predefined filling level comprises the steps of: starting a counter associated to a predetermined time value required for the water to reach the predefined filling level; in case said predefined filling level is not reached within the predetermined time: stopping the apparatus as well as the filling valve and the pump.
Description
BRIEF DESCRIPTION OF THE FIGURES
(1) The above and other features and advantages of the invention will become apparent from the following description of preferred embodiments made by way of non limiting example with reference to the accompanying drawings, in which elements denoted by a same or similar numerical reference denote elements having a same or similar function and construction, and in which:
(2)
(3)
(4)
(5)
DESCRIPTION OF PREFERRED EMBODIMENTS
(6) Referring to
(7) In the example illustrated in
(8) Of course, in accordance with other embodiments, there can be provided a probe arranged to transmit a signal representing a safety minimum level Ls below which the apparatus cannot operate for heating water, and a different probe arranged to indicate the boiler draining level when the function of automatic water replacement in the boiler is managed.
(9) Of course, in accordance with yet other embodiments, besides probe 21 preferably managed in alternative manner, the only minimum or maximum working probe can be provided, or more than two working probes can be provided in order to manage, for instance, also working conditions intermediate between the minimum and maximum conditions.
(10) In the present exemplary embodiment, for the sake of simplicity of description, an apparatus is described in which probe 21 is managed in alternative manner and probes 22, 23 signalling working levels Lmin and Lmax are provided.
(11) In the described embodiment, apparatus 10 includes, besides the probes, one or more resistors or heating members 25 arranged to heat water present in boiler 12 under the control of control circuit 14.
(12) Preferably, three resistors 25 are provided and are electrically connected to respective phases of a three-phase power supply circuit, known per se.
(13) In the preferred embodiment, a duct 26 arranged to supply steam through a suitable nozzle, and a duct 27 arranged to supply hot water through a respective suitable nozzle, are connected to boiler 12. Both steam and hot water are taken from the boiler in one of the possible working conditions, in the example the minimum or the maximum working level.
(14) Preferably, the steam and hot water supply through ducts 26 and 27 is controlled by respective independent valves 36 and 37, which can be manually operated valves or electrically operated valves controlled, in known manner, by control circuit 14, the connections of which are shown in
(15) A duct 28 arranged to supply, in known manner, water coming from the hydraulic mains, for instance through a respective valve 38, e.g. an electrically controlled valve 38, and a pump of known type, both controlled by control circuit 14, is also connected to boiler 12.
(16) In the preferred embodiment, a duct 29 arranged to enable draining or discharging water contained in the boiler through a respective electrically controlled replacement or discharge valve 39, of known type, controlled by control circuit 14, is also connected to boiler 12.
(17) Preferably the boiler internally contains at least one heat exchanger, not shown for the sake of simplicity of description in
(18) Control circuit 14 (
(19) In particular, in accordance with the present exemplary embodiment, microprocessor circuit 41 has at least the following inputs: connections 21a, 22, 23a to probes 21, 22, 23 for receiving signals Ls, Lmin, Lmax representative of the filling condition of the boiler; connections 43, for instance, to an ON/OFF switch, for receiving signals for switching the apparatus on and off; connections 45, for instance, to a further switch for receiving control signals arranged to switch the working conditions of the apparatus, for instance from Lmin to Lmax and vice versa; and connections 46 to a keyboard for receiving control signals arranged to modify operation parameters of the apparatus, or to carry out the dispensing operations.
(20) Of course, microprocessor circuit 41 has other input connections typical of the coffee machines, such as for instance an input detecting the pressure in the boiler and possibly the temperature, such inputs being not considered here since they are well known.
(21) Moreover, in accordance with the present exemplary embodiment, microprocessor circuit 41 has at least the following outputs: connections to resistors 25, arranged to enable controlling the working conditions of the boiler depending on the commands supplied by means of the further switch connected to the microprocessor circuit 41 via connection 45; connections 38a and 48a to electrically controlled valve 38 and to pump 48, for enabling filling the boiler; connections 39a to electrically controlled valve 39, for enabling draining the boiler; and connections 36a and 37a to electrically controlled valves 36 and 37, if provided, in order to control steam or hot water supply through suitable commands, for instance by means of a keyboard, provided through input connections to microprocessor circuit 41.
(22) Apparatus 10 as described allows not only modifying the operating conditions of the boiler depending on the intended working load, but also carrying out boiler draining and filling operations by avoiding electric power waste.
(23) Actually, thanks to the provision of electrically controlled replacement valve 39, it is possible to program, for instance by means of the keyboard connected to the microprocessor 41 via connection 46, the draining of the boiler in periods in which the apparatus is not active, for instance during the night or in periods preceding the activity of steam and hot water management by the apparatus.
(24) Advantageously, the possibility of water replacement in periods in which the apparatus is not active allows avoiding waste of thermal energy, which could otherwise be used to produce steam or hot water.
(25) Hereinafter, a block diagram representing an exemplary operation of apparatus 10 as described is disclosed with reference to
(26) Of course, the example provided herein is intended to show, as far as possible, an example of integration of the apparatus draining functions and of the operating functions with maximum potentiality and minimum potentiality of the apparatus.
(27) In accordance with the illustrated diagram, in an initial step (100), apparatus 10 is in rest conditions, in which preferably water in the boiler is substantially at ambient temperature.
(28) Such a condition may be verified by the control circuit, e.g. by checking that the apparatus has remained switched off for some hours or has been set to perform a draining function at a predetermined time.
(29) Of course, such a step can also be carried out manually.
(30) The subsequent steps are performed under the control of control circuit 14 and are as follows.
(31) In a step (110) following the initial one (100), electrically controlled draining valve 39 is opened.
(32) At the same time, in step (120), a counter associated with a maximum time value set for the draining of boiler 12, e.g. 5 minutes, is started.
(33) In a subsequent step (130), it is checked whether level Ls has been attained during draining.
(34) In the negative, step (140) it is checked whether the counter has reached the maximum time set. In case of positive result of step (140), a warning message is displayed, step (150), and the draining process is stopped as if draining had ended under normal conditions.
(35) In case of negative result of step (140), step (130) is repeated.
(36) If step (130) has a positive result, draining is completed by closing the electrically controlled draining valve, and this is automatically followed by step (170), in which electrically controlled filling valve 38 is opened and pump 48 is operated.
(37) Once the boiler draining step is over, the boiler filling step starts.
(38) Initially, while boiler filling pump 48 begins filling boiler 12, it is checked in step (180) whether the apparatus is set for operating under Lmin conditions or Lmax conditions.
(39) If the apparatus is set for operating under Lmin conditions, in step (190) a counter associated with a maximum time value set in order water level attains Lmin, e.g. 10 minutes, is started.
(40) In a subsequent step (200), it is checked whether level Lmin has been reached.
(41) In the negative (230), it is checked whether the counter has reached the maximum time set.
(42) In case of positive result of step (230), it is assumed, in step (240), that a failure exists in the filling circuit, or that no water coming from the hydraulic connection upstream the apparatus is available, and the apparatus as well as the electrically controlled filling valve and the filling pump are stopped.
(43) In case of negative result of step (230), step (200) is repeated.
(44) If level Lmin has been reached, positive result of step (200), pump 48 is stopped, electrically controlled filling valve 38 is closed and water heating resistors 25 are switched on.
(45) If the apparatus is set for operating under Lmax conditions, the process for checking the filling to level Lmax is substantially the same as the process already described for Lmin.
(46) In accordance with a variant of the above described process, shown in
(47) If level Lmax is not reached in the set time, positive result of step (340), the apparatus as well as the electrically controlled filling valve and the filling pump are stopped.
(48) From the description of the structure of the apparatus and of its operating manner it is clear that the boiler draining function is strictly connected with the operations for filling the boiler to the different operating levels, so that the operations for water replacement in the boiler can become routine operations without thereby affecting consumption of power supplied to the boiler resistors for heating the boiler.
(49) Of course, obvious modifications and/or variants of the above description in respect of the size, shape, materials, components, as well as in respect of the details of the illustrated construction and the operating manner are possible without departing from the invention as set forth in the following claims.