REFRIGERATION APPLIANCE AND EVAPORATOR THEREFOR
20230221048 · 2023-07-13
Inventors
- Giuseppe Cascino (Heidenheim, DE)
- Horst Drotleff (Aalen, DE)
- Daniel Micko (Ulm, DE)
- Katharina Plodek (Sontheim/Brenz, DE)
Cpc classification
F25B2339/023
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B39/022
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2500/13
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B39/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2500/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
An evaporator for a refrigeration appliance has a refrigerant line, which extends from an injection point to an outlet of the evaporator. A number of heat exchanger plates are in thermal contact with the refrigerant line and with the surroundings of the evaporator. The refrigerant line has, in an upstream region of the evaporator, at least one constriction, which is spaced apart from the injection point.
Claims
1-11. (canceled)
12. An evaporator for a refrigeration appliance, the evaporator comprising: a refrigerant line extending from an injection point to an outlet of the evaporator; a number of heat exchanger plates each connected in thermal contact with said refrigerant line and in thermal contact with surroundings of the evaporator; said refrigerant line, in an upstream region of the evaporator, being formed with at least one constriction that is spaced apart from said injection point.
13. The evaporator according to claim 12, wherein at least one of the following is true: a free cross-section of said constriction is larger than a free cross-section of said injection point, or a length of said constriction is smaller than a diameter of said refrigerant line away from said constriction.
14. The evaporator according to claim 12, wherein a distance of said at least one constriction from said injection point is a multiple of a diameter of said refrigerant line.
15. The evaporator according to claim 12, wherein said at least one constriction is one of a plurality of restrictions and wherein a distance of a constriction from said injection point or from an adjacent injection point is a multiple of a diameter of said refrigerant line.
16. The evaporator according to claim 12, wherein said refrigerant line and each said heat exchanger plate are components which differ from one another and are connected to one another by at least one of clamping, adhesion, or soldering.
17. The evaporator according to claim 12, wherein said constriction is formed by an impression in a wall of said refrigerant line.
18. The evaporator according to claim 12, wherein said refrigerant line runs in a straight line between said injection point and said at least one constriction.
19. The evaporator according to claim 12, wherein said number of heat exchanger plates is a multiplicity of mutually parallel heat exchanger plates and said refrigerant line intersects said heat exchanger plates.
20. The evaporator according to claim 12, wherein said at least one constriction is formed on a section of said refrigerant line that extends between said injection point and a most upstream contact point between said refrigerant line and said number of heat exchanger plates.
21. The evaporator according to claim 19, wherein said at least one constriction is formed in a section of said refrigerant line that extends between two said heat exchanger plates.
22. A refrigeration appliance, comprising an evaporator according to claim 12.
23. The refrigeration appliance according to claim 22 formed as a household refrigeration appliance.
24. The refrigeration appliance according to claim 22, formed with a storage chamber and an evaporator chamber which communicates with said storage chamber, and wherein said evaporator is accommodated in said evaporator chamber.
Description
[0018] Further features and advantages of the invention will emerge from the description of exemplary embodiments provided below, with reference to the attached figures. In the figures:
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025] In order to dampen a propagation of these compression waves along the refrigerant line 1, a number of constrictions 4 are molded in the refrigerant line 1 by compressing the pipe, e.g. with the aid of pliers. The constrictions 4 can be molded in a reproducible manner with a constant cross-section if jaws 5 of the pliers have a stop which prevents the jaws 5 from moving further together before the refrigerant line 1 compressed between the jaws 5 is closed completely.
[0026] The formation of the constrictions 4 by bending the wall of the refrigerant line 1 means that the cross-section of the refrigerant line 1 increases and decreases continuously past each constriction 4. This continuous change in cross-section facilitates a low-noise, less turbulent flow at the constrictions 4.
[0027] Each constriction 4 has in each case a narrowest point 6, from which the cross-section in and against the flow direction of the refrigerant gradually increases. The distance between the two points 7 on both sides of the narrowest point 6 can be considered to be the length l of the constriction 4, at which points the free cross-section of the refrigerant line 1 is in each case twice as large as at the narrowest point 6. In order to keep a drop in pressure at the constriction 4 low, this length l is smaller here than the diameter d of the refrigerant line 1 away from the constrictions 4. The distance of the constrictions 4 from one another and from the injection point 3 is a multiple of this diameter.
[0028]
[0029] If there is no space available in the surroundings of the block 10 to accommodate an upstream section of the refrigerant line there, then the constrictions must be created in the evaporator block itself. The problem here is that if a constriction is created by compressing the refrigerant line 1 in a first direction, the dimension of the refrigerant line 1 can increase in a second direction which is at right angles to the first, and that as a result it may be impossible to thread heat exchanger plates 9 with holes that are closely tolerated in the interests of a good thermal transmission onto the refrigerant line.
[0030]
[0031]
REFERENCE CHARACTERS
[0032] 1 Refrigerant line [0033] 2 Capillary [0034] 3 Injection point [0035] 4 Constriction [0036] 5 Jaws [0037] 6 Narrowest point [0038] 7 Point [0039] 8 8′ Evaporator [0040] 9 Heat exchanger plate [0041] 10 10′ Block [0042] 11 Retaining hole [0043] 12 Defrost heater [0044] 13 Upstream section [0045] 14 Outlet [0046] 15 Bypass blocker [0047] 16 Curve [0048] 17 Limb [0049] 18 Group [0050] 19 Curve [0051] 20 Upstream end [0052] 21 Evaporator chamber [0053] 22 Storage chamber [0054] 23 Inlet opening [0055] 24 Outlet opening