The present invention relates to a refrigerating device having a housing that encloses an interior space subdivided by an intermediate base into two zones whose temperature can be controlled mutually independently.
It is customary practice in the assembly of refrigerating devices to mount the housing initially having hollow walls, then into its hollow interior to inject a synthetic resin that expands within the hollow space thereby filling it and finally solidifies therein. However, a problem arises therein due to the intermediate base's generally being less thick than the housing's outer walls. If the outer walls and intermediate base form a contiguous hollow space requiring to be foam-filled, then even though the foam will expand efficiently within the outer walls' wide hollow spaces, only a small amount will penetrate into the intermediate base so there is a risk that parts of the intermediate base will not be foam-filled and so form cold bridges between the refrigerating device's temperature zones. Said problem is difficult to resolve economically. Albeit the amount of synthetic resin used could be increased to insure that the foam will also fill the intermediate base, that is associated with increased material costs and will result in increased density and hence poorer insulating efficiency of the foam in the outer walls. Even though it could be made easier for the foam to penetrate by widening the intermediate base, that would mean losing some of the refrigerating device's useful volume.
The approach has therefore been adopted of fabricating the thermally insulating intermediate base separately from the rest of the housing and inserting it subsequently into the housing's interior space. Compared with, for instance, a solution where the intermediate base is deep-drawn as a single piece together with an interior container delimiting the refrigerating device's interior space, fabricating and mounting the intermediate base separately is, though, far more effort-intensive and expensive because two sets of form tools will be required for each model of refrigerating device: In each case one for the interior container and another for the intermediate-base parts. If a plurality of models of a refrigerating device are to be fabricated that mutually differ substantially in the width of their housing, that will be a not insignificant cost factor.
The object of the present invention is therefore to provide a refrigerating device that has an interior space subdivided by a thermally insulating intermediate base into two zones whose temperature can be controlled mutually independently and that is able to be fabricated having different housing widths cost-effectively and with the aid of a small set of specific tools.
Said object is achieved in that said refrigerating device's intermediate base includes a plate bordered along its front and back edge by extrusion profiles. That will enable the plate along with the extrusion profiles to be prefabricated in the form of long tracks not yet exclusive for a specific housing width of the refrigerating device and will further enable the lengths, required for assembling a refrigerating device having a specific, given housing width, of said parts to be cut from the tracks as required.
The plate is preferably bordered along its lateral edges by injection-molded parts. Said injection-molded parts can be used identically in each of a plurality of device models having different widths so that they can be mass-produced cost-effectively.
For powering energy-consuming or signal-processing components mounted in or on the intermediate base it should be provided with a plug-in cable connector able to establish a connection with a complementary plug-in connector belonging to the housing. To simplify assembling the intermediate base and mounting it in the refrigerating device the plug-in connector is preferably attached to a rear end of at least one of the injection-molded parts.
The plate preferably comprises an insulating inner layer made of porous material and, for its protection, at least one outer layer that is impervious to humidity. A cable channel between a plug-in cable connector and an energy-consuming or signal-processing component is expediently recessed in the inner layer.
In particular an illuminating means and/or temperature sensor can be provided on the intermediate base, preferably on its underside, as an energy-consuming and/or signal-processing component.
An electronics module able to serve, for example, to display a temperature that has been measured in one of the zones in the interior space or set as a desired temperature for said zone and/or to set said desired temperature can furthermore be attached to the front edge of the intermediate base.
Control and/or display elements of the electronics module are preferably freely exposed through a window in the extrusion profile attached to the front edge.
The extrusion profile attached to the front edge can also be divided in two, with the electronics module being in that case arranged between the two parts.
Both types of extrusion profiles can also be used on one intermediate base.
A seal is preferably attached between the front edge of the intermediate base and a door of the refrigerating device to effectively separate the interior space's two zones. Said seal can be secured optionally on either the intermediate base or the door. It is attached preferably to the intermediate base because tolerances in the door's installation height will then scarcely be able to adversely affect of the seal.
An air-distribution chamber that communicates with a cold-air feeder pipe extending in a wall of the housing and, via distributed openings, with the zone located beneath the intermediate base is furthermore preferably arranged on the underside of the intermediate base.
An air-collecting chamber that communicates via distributed openings with the zone located beneath the intermediate base and with a warm-air extraction pipe extending in a wall of the housing can analogously be arranged on the underside of the intermediate base. The housing comprises the carcass and door so that not only a wall of the carcass but also the door is to be regarded as a wall of the housing.
The air-distribution chamber and air-collecting chamber expediently each extend over a part of the intermediate base. An illuminating-means housing for an illuminating means illuminating the zone beneath the intermediate base will then expediently be arranged on a boundary between the two chambers.
A horizontal securing profile into which lateral edges of the intermediate base engage is preferably attached to each side wall of the housing for installing the intermediate base.
If the side walls have a metallic inner coating, then said inner coating is expediently interrupted at the height of the intermediate base to prevent an exchange of heat between the zones past the intermediate base via the inner coating.
Further features and advantages of the invention will emerge from the following description of exemplary embodiments with reference made to the attached figures:
Formed on the front side of an intermediate wall 9 separating the evaporator region 3 from the first refrigerating region 4 (see
Secured adjacent to the rear wall 8 on the intermediate wall 9 is a distributor hood 12 in which are formed a multiplicity of air holes 13 through which cold air originating in the evaporator region 3 passes and is distributed in various directions in the top part of the first refrigerating region 4. Located beneath the distributor hood 12 on the rear wall 8 are a plurality of pairs of openings 14 from which cold air can likewise flow. The height of said pairs of openings 14 is selected such that each pair of openings 14 will cater to a compartment when supports for items requiring to be refrigerated have been mounted in the first refrigerating region 4.
Housed behind the conduit 16, adjacent to the rear wall 8, is a blower comprising a motor 18, a bucket wheel 19 driven thereby, and a housing 20. Formed on the front side of the housing 20 in the axial direction of the bucket wheel 19 is an intake opening. The top half of the housing 20 extends circumferentially close around the bucket wheel 19; the housing 20 is downwardly open so that air accelerated radially outward by rotating of the bucket wheel 19 flows away into a chamber 21.
A hinged flap 22 is housed in said chamber 21. In the position shown in the figure the flap 22 obstructs a cold-air supply opening 23 leading vertically downward to the first refrigerating region 4. The air is thereby forced toward the rear wall 8 and down into a cold-air supply path 24 which inside the rear wall 8, separated from the first refrigerating region 4 by a thin insulating layer 25, leads to the second refrigerating region 6. When the flap 22 hinged to an intermediate wall 26 between the cold-air supply opening 23 and cold-air supply pipe 24 is brought into a vertical position shown in the figure in dotted outline form, it will obstruct the cold-air supply path 24 and the stream of cold air will reach the distributor hood 12 through the cold-air supply opening 23. One of the air holes 13 through which air flows out of the distributor hood 12 into the first refrigerating region 4 can be seen in the figure. Openings situated outside the sectional plane in the rear wall of the distributor hood 12 and the insulating layer feed two channels extending on both sides of the cold-air supply path 24 and supplying the openings 14.
The cold-air supply path 24 leads to a cold-air feeder opening 37 of the second refrigerating region 6 and there reaches an air-distribution chamber 27 in an air-ducting housing 28 mounted beneath the intermediate base 5. A vertical partition 29 separates the air-distribution chamber 27 occupying the back region of the air-ducting housing 28 from an air-collecting chamber 30 occupying the front region. Formed in a baseplate 31 of the air-ducting housing 28 are a multiplicity of openings 32 (see
An air-discharge opening 33 on the side, facing the door 2, of the air-collecting chamber 30 is situated opposite an inlet opening of the air pipe 11 extending back through the door 2 to the evaporator region 3. A flexible sealing strip 34 made of rubber that is secured to the front edge of the intermediate base 5 and compressed between it and the door 2 prevents air from passing from the collecting chamber 30 and second refrigerating region 6 to the first refrigerating region 4, insuring thereby that cold air can be applied to the two refrigerating regions 4, 6 separately and without their influencing each other.
Arranged on the front side of the electronics module 44 is a control panel 46 that has display elements and/or buttons 47 and on which a user is able to read the temperature currently prevailing in the second refrigerating region 6 or the desired value for said temperature and set the desired value.
A likewise extruded decorative profile 48 is provided for plugging onto the electronics module 44 and the profiles 42 bordering it and concealing them, except for the control panel 46, which remains accessible via a window 49 cut into the decorative profile 48.
The decorative profile 48 does not extend across the entire width of the intermediate base 5; head joints 50 of injection-molded lateral enclosing parts 51 sit flush against each of its ends. The two enclosing parts 51 are shaped mutually mirror-symmetrically for being plugged onto the right-hand or, as the case may be, left-hand edge of the plate formed by the layers 38, 39, 40. Only the right-hand of the two enclosing parts 51 is shown in
Molded onto a rear end of the enclosing part 51 is a trough 52 that accommodates an electric plug-in connector. Inter alia the electronics module 44 is powered via said plug-in connector and the cable channel 45 ending in the vicinity of the trough 52.
A plug-in connector (not shown) that is complementary to the plug-in connector accommodated in the trough 52 is mounted on the rear wall 8 so that the two plug-in connectors can be contacted by simply pushing the intermediate base 5 into the interior space of the carcass 1.
Extending along the underside of the profile 42 behind the notch 53 is a downwardly open groove into which the sealing strip 34 has been inserted.
As shown in
A further downwardly open recess 65 in the air-ducting housing 28 is provided for accommodating a temperature sensor for registering the temperature in the second refrigerating region 6. The recess 65 is in the assembled condition located in the immediate vicinity of the trough 52, accommodating the plug-in connector, in the right-hand enclosing part 51 so that a cable carrying a measuring signal from the temperature sensor can be conveyed to the electronics module 44 along the entire length of the cable channel 45.
Number | Date | Country | Kind |
---|---|---|---|
20 2006 005 548.7 | Apr 2006 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/EP2007/052316 | 3/13/2007 | WO | 00 | 10/3/2008 |