REFRIGERATED GRINDER
20180310767 ยท 2018-11-01
Inventors
Cpc classification
A47J42/50
HUMAN NECESSITIES
A47J31/42
HUMAN NECESSITIES
F25B21/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2321/0251
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
A47J42/50
HUMAN NECESSITIES
F25B21/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A grinder for beans of plant-based products, for example roasted coffee, whose powder is adapted for use in the preparation of beverages, includes a grinding chamber defined by a cylindrical wall, a pair of opposed grinding wheels, at least one of which rotates, and which are located in said grinding chamber, an electric motor for driving the rotating grinding wheel, a first cooling duct extending in said cylindrical wall between a first inlet and a first outlet. A tubular circuit connected to the first cooling duct comprises a motor pump for circulating the fluid, heat dissipater, at least one valve member, an electronic control unit for actuating said motor pump and for turning on said heat dissipater according to the value of temperature sensed by said temperature sensor.
Claims
1. A grinder for beans of plant-based products, whose powder is adapted for use in preparing beverages, comprising: a grinding chamber defined by a first cylindrical wall extending between a bottom and a top; a pair of opposed grinding wheels, including a rotating grinding wheel, and which are located in said grinding chamber; an electric motor for driving the rotating grinding wheel; a hopper for loading the beans to be ground within the grinding chamber; an outlet channel for unloading a ground product out of said chamber; a first cooling duct extending around said first cylindrical wall between a first inlet and a first outlet; a temperature sensor located in said first cooling duct; a first tubular circuit extending between said first inlet and said first outlet, said first tubular circuit being in hydraulic communication with said first cooling duct and having a first heat dissipating fluid flowing therethrough, said first tubular circuit comprising a first motor pump for circulating the first heat dissipating fluid in said first tubular circuit and in said first cooling duct, a first heat dissipater, and a first valve member; and an electronic control unit, for actuating said motor pump and for turning on said first heat dissipater according to a value of temperature sensed by said temperature sensor, said first cooling duct being formed within a thickness of the cylindrical wall and comprising a first series of pairs of axial recesses formed in the thickness of the first cylindrical wall, connected together by first circumferential passageways and separated by first axial ribs, said first circumferential passageways being closed by first plate-like members and first seal elements.
2. The grinder according to claim 1, wherein said heat dissipater comprises a radiator, within said first tubular circuit, and an airstream generator.
3. The grinder according to claim 1, wherein said first tubular circuit includes a reservoir for containing said heat dissipating fluid.
4. The grinder as claimed in claim 1, wherein said valve member of said first tubular circuit is a fluid on/off valve for admitting and discharging said heat dissipating fluid.
5. The grinder as claimed in claim 1, comprising: a motor chamber, vertically aligned with said grinding chamber and defined by a second cylindrical wall, wherein said electric motor is accommodated; a second cooling duct extending around the second cylindrical wall between a second inlet and a second outlet; a second tubular circuit extending between said second inlet and said second outlet, said second tubular circuit being in hydraulic communication with said second cooling duct and having a second heat dissipating fluid flowing therethrough, said second tubular circuit further comprising a second motor pump for circulating the second heat dissipating fluid in said second tubular circuit and in said second cooling duct, a second heat dissipater, and a second valve member, the electronic control unit being configured to actuate said second motor pump and for turning on said second heat dissipater according to the value of temperature sensed by said temperature sensor wherein said second cooling duct is formed within a thickness of said second cylindrical wall and comprises a second series of pairs of axial recesses formed in the thickness of the second cylindrical wall, connected together by second circumferential passageways and separated by second axial ribs, said second circumferential passageways being closed by second plate-like members and second seal elements.
6. The grinder as claimed in claim 1, comprising: a motor chamber, vertically aligned with said grinding chamber and defined by a second cylindrical wall, wherein said electric motor is accommodated; a second cooling duct extending around the second cylindrical wall between a second inlet and a second outlet; a second tubular circuit extending between said second inlet and said second outlet, said second tubular circuit being in hydraulic communication with said second cooling duct and having the first heat dissipating fluid flowing therethrough, said first motor pump being configured to circulate the first heat dissipating fluid in said second tubular circuit and in said second cooling duct, wherein said second cooling duct is formed within a thickness of said second cylindrical wall and comprises a second series of pairs of axial recesses formed in the thickness of the second cylindrical wall, connected together by second circumferential passageways and separated by second axial ribs, said second circumferential passageways being closed by second plate-like members and second seal elements.
7. The grinder as claimed in claim 5, comprising a third tubular circuit connecting said first outlet of said first cooling duct of the first cylindrical wall with said second inlet of said second cooling duct of said second cylindrical wall, said first inlet of the first cooling duct and said second outlet of said second cooling duct being connected with said first tubular circuit and with said second tubular circuit respectively.
8. The grinder as claimed in claim 1, comprising a doser for dosing the ground product that comes out of the grinding chamber.
9. The grinder as claimed in claim 1, wherein the beans are roasted coffee beans.
10. The grinder as claimed in claim 1, wherein said first heat dissipater includes a radiator, an electric fan, and at least one Peltier cell located between the radiator and the electric fan.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0038] The disclosure is now described in greater detail with reference to certain preferred embodiments thereof, illustrated in the accompanying drawings, given by mere way of a non-limiting example, in which:
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DETAILED DESCRIPTION
[0055] With reference to the aforesaid drawings and in particular to
[0056] Both the electric motor for actuating the rotating grinding wheel and the grinding chamber (not shown in said drawing) are accommodated in the body 2. Conventionally, above the body 2 is a hopper 3 in which there is contained the product to be groundfor example roasted coffee beansto be supplied to the underlying grinding chamber.
[0057] In the front part of the body 2 itself is the device 4 for the preparation of the dose of ground coffee and for dispensing it into the filter holder (not shown in the drawing), which is rested on the specific support indicated diagrammatically with 5.
[0058] With reference to
[0059] Above the grinding chamber 6, which is described in detail below, is a mechanism, in itself conventional, overall indicated with 8, for adjusting the distance between the grinding wheels and therefore for adjusting the grinding level desired for the ground product.
[0060] Such mechanism 8 comprises a gearwheel 9 and a worm gear 10, in tangential engagement with each other. The grinding chamber 6 is provided with a discharging channel 11 for dispensing the ground product towards the device 4 for the preparation of the dose, in a completely conventional manner.
[0061] With reference to
[0062] The latter is mounted vertically between a bearing 14 placed in the lower wall 15 of the housing 7 and a bearing 16 placed in the upper wall 17 of the housing 7. The upper free end 18 of shaft 13 penetrates the cavity 19 of the grinding chamber 6 through a hole 20, provided on the bottom wall 21 of the grinding chamber itself, engaging with the rotating grinding wheel 22 of the pair of grinding wheels 22 and 23.
[0063] With particular reference to
[0064] According to an alternative embodiment not shown in the drawings, the rows of radial openings 24 and 25 instead are not in the motor housing, with subsequent reduction of the efficiency of the passive disposal of the heat generated in such housing.
[0065] With reference to
[0066] The circumferential passageways 31 are closed by the application of an annular element 34 with the interposition of a seal 35 when the parts forming the body 2 of the grinder are mounted.
[0067] Similarly, the circumferential passageways 32 at the bottom 27 are closed by the application of a plate 36 and relative seal 37 when the parts forming the body 2 of the grinder are mounted.
[0068] The various pairs of axial recesses 29 and 30 are connected together in series with the formation of a first cooling duct, indicated as whole with C1, which is provided with a first inlet 39 and a first outlet 38, both positioned in a flat zone 40 of the cylindrical wall 26 where there are provided corresponding fittings 42 and 41 for the connection to external tubular circuits, as seen below.
[0069] A temperature sensor 44 is positioned in the same flat zone 40, in a hole 43 thereof, the function of which sensor is to result in the cooling operation, in addition to sensing the temperature of the grinding chamber 6, as is seen in the continuation of the description. The temperature sensor 44 indeed is connected with an electronic control unit, indicated with ECU in
[0070] As shown in
[0071] With particular reference to
[0072] The sensor 44, which is positioned inside the hole 43 with the interposition of an insulating bushing 43C, reaches inside the passageway 43A with the end 44A thereof.
[0073] With such arrangement, the temperature sensor 44 is capable of accurately sensing the temperature of the powder of ground product reaching the channel 11.
[0074] Preferably, the cylindrical wall 26 that defines the grinding chamber 6 is obtained by high pressure aluminium die casting, although other construction types may be considered for making the structure thereof.
[0075] With particular reference to
[0076] With reference to
[0077] It is worth noting in particular in such modified embodiment, that the housing 7 of the electric motor for driving the rotating grinding wheel 22 is contained inside a chamber 45 defined by a second cylindrical wall 46 in which thickness there are obtained axial recesses 47, 48 separated by axial ribs 49 and connected, at an end thereof, by circumferential passageways 50.
[0078] Observing
[0079] With the interposition of respective seals 51A and 52A, the annular plates 51 and 52 close the circumferential passageways 50, thus contributing to the formation of a second cooling duct, indicated as a whole with C2, which extends around the chamber 45 for containing the housing 7 of the motor between a second inlet 53 and a second outlet 54, they also provided with respective fitting devices 55 and 56 for the connection to external tubular circuits, as seen below.
[0080] With reference to
[0081] The stretch T1A of such circuit connects the first outlet 38, provided with fitting 41, with a radiator 57, and is provided with a motor pump 58 for the circulation of the fluid, particularly cooling fluid, admitted into the same tubular circuit and also into the duct C1 connected thereto.
[0082] The outlet from the radiator 57 is connected to the branch T1B of the circuit T1 and through a reservoir 59 and a valve 60 for discharging or admitting the cooling fluid, it reaches the inlet 39, with fitting 42, of the first cooling duct C1.
[0083] The radiator 57 is associated in conventional manner with an electric fan 61 for the formation of an airflow flowing through the radiator 57.
[0084] The motor pump 58 and the electric fan 61 are connected to the electronic control unit ECU for the actuation thereof as a function of the temperature signal received from the sensor 44.
[0085] With reference to
[0086] The stretch T2A of such circuit connects the second outlet 54, provided with fitting 56, with a second radiator 257 and is provided with a motor pump 258 for the circulation of the fluid, particularly cooling fluid, admitted into the same tubular circuit T2 and also into the duct C2 connected thereto.
[0087] The outlet from the radiator 257 is connected to the branch T2B of the circuit T2 and through a reservoir 259 and a valve 260 for discharging or admitting the cooling fluid, it reaches the second inlet 53, with fitting 55, of the second cooling duct C2.
[0088] The second radiator 257 is associated in conventional manner with a second electric fan 261 for the formation of an airflow flowing through the radiator 257, thereby creating complete independence of the cooling of the electric motor housing from the cooling of the grinding chamber.
[0089] The motor pump 258 and the electric fan 261 are connected to the electronic control unit ECU for the actuation thereof as a function of the temperature signal received from the sensor 44.
[0090] Alternatively, with reference to
[0091] The same components of the tubular circuit T1 may be used with such parallel connection, like alternatively also the ones forming the tubular circuit T2 may be used, thereby achieving a simultaneous cooling of the grinding chamber and of the motor housing.
[0092] With reference to
[0093] The radiators 57 and 257, with the relative electric fans 61 and 261, form a system for dissipating the heat held by the cooling fluid contained in the circuits C1, T1, C2, T2.
[0094] In an alternative embodiment shown in
[0095] Such cells 62 are intended to be electrically supplied with relative conventional supply circuits (not shown in
[0096] The hot joint of the Peltier cells 62 instead preferably is positioned in contact with the outer surface 63 of a box-like element 64, inside of which the electric fan 61 or 261 is placed, which produces a cooling airflow (diagrammatically depicted by arrows 65) passing through the slots 66 made in the outlining walls thereof.
[0097] From that described above and illustrated in the accompanying drawings, it is possible, with the grinder according to the disclosure, to perform the cooling of the grinding chamber in a completely independent manner from the grinding operation, both during grindingby means of different motor means than the ones designated to driving the grinding wheeland during periods in which the grinder is not operating.
[0098] Indeed, the activation of the cooling of the grinding chamber is actuated by putting into operation the motor pump 58 which puts the cooling liquid into movement in the tubular circuit T1 and in the duct C1, and possibly also the electric fan 61 associated with the radiator 57 when the electronic control unit ECU receives a signal from the sensor 44 indicating the temperature has exceeded a predetermined threshold value (for example 30 C.) in the grinding chamber 6.
[0099] The cooling may be limited to the grinding chamber 6 but it may also extend to the chamber 45 provided for containing the housing 7 of the electric motor, like it may also be actuated only for the aforesaid chamber 45 according to the exceeded level of the threshold value of the temperature reached in the grinding chamber 6.
[0100] Finally, the cooling may be achieved by means of the type of parallel circulation (
[0101] Therefore, according to the disclosure, not only is the heating of the product powder avoidedparticularly ground coffeethus reducing the negative consequences of organoleptic type, but it is also avoided for the heat expansions of the supports of the grinding wheels in the grinding chamber to interfere with adjusting the distance between the grinding wheels themselves, thus avoiding particle size errors in the ground product.
[0102] The various embodiments described above can be combined to provide further embodiments. These and other changes can be made to the embodiments in light of the above-detailed description. In general, in the following claims, the terms used should not be construed to limit the claims to the specific embodiments disclosed in the specification and the claims, but should be construed to include all possible embodiments along with the full scope of equivalents to which such claims are entitled. Accordingly, the claims are not limited by the disclosure.