The present invention relates to a device for controlling the service loads of an electric household appliance, in particular a refrigerator.
As is known, many household appliances require systems for regulating and controlling one or more operating functions, which are activated or deactivated according to various operating conditions. Such is the case, for example, of a refrigerator compressor, which calls for a control system which, in response to temperature variations measured inside the refrigerator, turns the compressor on or off under the control, for example, of a mechanical thermostat. The compressor supply circuit normally comprises two activating branches, which are active at the start-up (or “launch”) stage and the normal running (“operating”) stage respectively: in which case, a positive temperature coefficient PTC resisting unit is used to regulate current flow through the launch branch, and the mechanical thermostat for regulating current flow through the operating branch.
A major drawback of control systems of this type is the relatively high energy consumption involved, which is mainly due to the presence of the continuously operating PTC unit, and to the difficulty in regulating the mechanical thermostat.
Employing an electronic as opposed to mechanical thermostat and other types of relays in place of PTC units permits a certain, albeit relatively small, reduction in consumption, but calls for the use of more complex, more expensive components.
It is an object of the present invention to provide a device for controlling the service loads of an electric household appliance, which, though cheap and easy to produce, provides for low-energy operation and long-term reliability.
According to the present invention, there is provided a device for controlling the service loads of an electric household appliance, in particular a refrigerator, comprising a control unit for controlling service functions of said electric household appliance, and a positive temperature coefficient (PTC) resisting unit connected in series with said control unit; characterized by also comprising thermally activated actuating means for selectively connecting/disconnecting respective auxiliary switches of said service loads; said PTC unit being located close to said thermally activated actuating means, and generating, when supplied with electric current, sufficient heat to activate said thermally activated actuating means.
Said PTC unit used to thermally activate said actuating means is advantageously the same one used to directly regulate operation of at least one power application of said electric household appliance.
More specifically, said thermally activated actuating means comprise at least one temperature-deformable element; at least one movable control member for controlling said auxiliary switches; and kinematic connecting means between said deformable element and said movable control member.
In a preferred embodiment, the movable control member is a camshaft, the cams of which cooperate with said respective auxiliary switches of said loads to selectively connect/disconnect the auxiliary switches; at least one cam of said camshaft is also used to determine the angular position of the camshaft.
The device according to the invention preferably also comprises a control circuit for controlling the PTC unit and for cyclically cutting off supply to the PTC unit, e.g. by means of an electronic switch interposed between the control unit and the PTC unit, once sufficient heat has been generated by the PTC unit to activate said thermally activated actuating means.
The device according to the invention is therefore straightforward and reliable, does not call for particularly complex and/or high-cost components, and, as compared with known control systems, provides for significant in-service energy saving. Supply to the PTC unit, in fact, may be cut off at the end of each cycle to activate the service load (or loads), thus reducing overall consumption of the device. The device according to the invention is also highly flexible, by controlling and regulating numerous different service functions of the electric household appliance to which it is applied. For example, in the case of a refrigerator, in addition to the compressor, the device may also control the interior light, the fan, etc., and this using only one PTC unit, in particular, the same one used to control operation of the compressor. For which purpose, in fact, the movable control member need simply be provided with a number of cams for controlling corresponding switches for the various loads. One or more cams may also advantageously be used to determine the angular position of the movable control member, so that the control unit is always in a condition to determine the position of the movable control member and, hence, the operating conditions of the system, and may also intervene in the event of failure to activate any of the service functions.
Moreover, the device according to the invention enables all the heat-generating components to be located as best suited to the application in question. More specifically, in the case of a refrigerator, such components may be located away from the cold region, e.g. directly on the compressor, thus improving the overall efficiency of the appliance.
A non-limiting embodiment of the present invention will be described by way of example with reference to the accompanying drawings, in which:
Number 1 in
According to the invention, control device 1 also comprises thermally activated actuating means 6 for selectively connecting and disconnecting service loads 2 of the refrigerator. Operation of actuating means 6 and consequent selective activation of one or more of service loads 2 are controlled by PTC unit 4 as indicated by control unit 3.
In the preferred embodiment shown in detail in
PTC unit 4 is located close to thermally activated actuating means 6, and, when supplied with electric current, generates sufficient heat to activate actuating means 6.
In the non-limiting example shown in
Movable control member 8 is a camshaft rotating about a predetermined axis of rotation, and the cams 12 of which cooperate with auxiliary switches 9 of service loads 2 to selectively connect or disconnect the loads. One end of camshaft 8 is fitted with a wheel 13 having radial lobes 14 with a predetermined spacing; kinematic connecting means 10 comprise a first lever 16 and a second lever 17 hinged to each other; first lever 16 is hinged at an intermediate point 18 to a fixed support, and at opposite longitudinal ends to second lever 17 and to one end of deformable element 7; and second lever 17 exerts thrust successively on each of radial lobes 14 of wheel 13 to rotate camshaft 8 by a predetermined angle, substantially corresponding to the spacing of radial lobes 14, whenever temperature-deformable element 7 changes from first shape 7a to second shape 7b. Kinematic connecting means 10 preferably also comprise known click actuating means (e.g. integral with levers 16, 17 or deformable element 7, and not shown for the sake of simplicity) for click rotating camshaft 8.
Control device 1 also comprises a control circuit 20 for controlling PTC unit 4 and for cyclically cutting off supply to PTC unit 4 once sufficient heat has been generated by PTC unit 4 to activate thermally activated actuating means 6. Preferably, control circuit 20 comprises the TRIAC-type electronic switch 5 interposed between control unit 3 and PTC unit 4, and thermally activated actuating means 6 supply electronic switch 5 with a signal, either via control unit 3 (see the circuit indicated by the continuous line in
Control circuit 20 may also advantageously be used to supply control unit 3 with a signal indicating the angular position of camshaft 8, e.g. detected by means of one or more of cams 12.
In the non-limiting example shown in
The whole of control device 1, including thermal protector 30, may be housed in a casing 32, from which project the various contacts for electrically connecting control device 1, e.g. conducting pins 22, 23, 31 (for connection to compressor 21), terminals 35 for connection to service loads 2, and supply contacts 36, 37, 38, e.g. connected respectively to PTC unit 4, to actuating means 6, and to the output of thermal protector 30. Casing 32 may then be fitted directly to an outer casing 40 of compressor 21 (
Control device 1 according to the invention operates as follows.
When control unit 3 detects the need to vary the operating condition of a service function 2 (or when activation of the service function is commanded directly by the user), a signal is sent to normally-open electronic switch 5, which closes to permit current flow to PTC unit 4; PTC unit 4 is heated, and the increase in temperature changes the shape of temperature-deformable element 7. Temperature-deformable element 7 is hinged to first lever 16 so as to produce a predetermined angular displacement of first lever 16 and a corresponding displacement of second lever 17 hinged to first lever 16; and second lever 17 in turn exerts thrust on one of radial lobes 14 of wheel 13 to rotate wheel 13 and camshaft 8 by a predetermined angle (corresponding to the spacing of radial lobes 14).
Depending on the position and configuration of cams 12, the rotation of camshaft 8 closes or opens switches 9 to activate or deactivate the corresponding service functions 2 (including, in particular, the power application defined by compressor 21).
Once camshaft 8 is rotated the predetermined amount, corresponding to the translation of element 7 on changing from shape 7a to shape 7b, control unit 3 opens electronic switch 5 to cut of f supply to PTC unit 4: temperature-deformable element 7 is restored to shape 7a, and levers 16, 17 to their original positions, pending further current flow through PTC unit 4 to rotate camshaft 8 and activate actuating means 6.
Clearly, changes may be made to the device as described herein without, however, departing from the scope of the accompanying Claims.
Number | Date | Country | Kind |
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MI98A2534 | Nov 1998 | IT | national |
This application is a continuation of Ser. No. 09/856,354 Aug. 27, 2001 U.S. Pat. No. 6,660,976 which is a 371 of PCT/IT99/00383 Nov. 24, 1999.
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1959659 | Colbie | May 1934 | A |
2970454 | Everard et al. | Feb 1961 | A |
3202842 | Sherwood | Aug 1965 | A |
3688060 | Risk | Aug 1972 | A |
3902151 | Hall et al. | Aug 1975 | A |
Number | Date | Country |
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0 234 189 | Sep 1987 | EP |
1 225 302 | Mar 1971 | GB |
Number | Date | Country | |
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20040040951 A1 | Mar 2004 | US |
Number | Date | Country | |
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Parent | 09856354 | US | |
Child | 10653268 | US |