THERMAL EXPANSION VALVE FOR A RESIDENTIAL REFRIGERATION APPLICATION
20230034594 · 2023-02-02
Inventors
Cpc classification
F25B2341/064
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2500/15
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B41/335
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
The present invention is directed at a thermal expansion valve for a residential refrigeration application, including a valve body with a high pressure inlet, a low pressure outlet, a first suction gas port and a second suction gas port. The valve further includes a superheat defining mechanism with a diaphragm, a pushpin and a charge.
Claims
1. A thermal expansion valve for a residential refrigeration application, comprising a valve body with a high pressure inlet, a low pressure outlet, a first suction gas port and a second suction gas port, the valve further comprising a superheat defining mechanism with a diaphragm, a pushpin and a charge, wherein the amount of charge is selected such that a part of the charge is in a liquid state at typical operation conditions of the refrigeration application.
2. The thermal expansion valve according to claim 1, wherein the charge comprises ballast material and/or that the charge comprises a refrigerant other than CO2 and/or that the time constant of the valve is a function of at least the dimensions and materials of the superheat defining mechanism, wherein the superheat defining mechanism is designed for providing a time constant of greater than 30 seconds, in particular greater than 60 seconds, and wherein the charge is designed such that it determines the value of the time constant for the most part and/or that the superheat defining mechanism comprises a superheat setting screw.
3. The thermal expansion valve according to claim 2, wherein a protection member is provided between the diaphragm and the ballast material of the charge or that the ballast material of the charge is in direct contact with the diaphragm and/or that the charge density is 30 to 350 mg/cm.sup.3, preferably 60 mg/cm.sup.3 to 100 mg/cm.sup.3 if ballast material is provided and 50-400 mg/cm.sup.3 if no ballast material is provided.
4. The thermal expansion valve according to claim 1, wherein the superheat defining mechanism comprises a diaphragm top, a diaphragm bottom and/or a diaphragm support, wherein the diaphragm support comprises a perforated plate and/or a ring and/or a non-rotational-symmetric plate.
5. The thermal expansion valve according to claim 1, wherein a connection element is provided for connecting the superheat defining mechanism to the valve body.
6. The thermal expansion valve according to claim 1, wherein the diaphragm top is shaped at least partially cylindrically.
7. The thermal expansion valve according to claim 1, wherein ballast material of the charge comprises diatomite, a molecular sieve and/or marinite and/or is provided in cylindrical, cubic, conical, spherical and/or toroidal form.
8. The thermal expansion valve according to claim 1, wherein the charge is pressurized with an inert gas such as nitrogen.
9. The thermal expansion valve according to claim 1, wherein the high pressure inlet is provided between the low pressure outlet on the one side and the first suction gas port and/or second suction gas port on the other side with respect to an axial direction of the valve body.
10. The thermal expansion valve according to claim 1, wherein the connection between the diaphragm and the valve body comprises a knife edge seal and/or an O-ring and/or a weld.
11. The thermal expansion valve according to claim 1, wherein it comprises a check valve.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0033] Further advantages and details of the invention are described with reference to the following figures, the figures showing:
[0034]
[0035]
[0036]
[0037]
DETAILED DESCRIPTION
[0038]
[0039] Inside a sealed portion of the superheat defining mechanism 2, the amount of charge 22 is selected such that a part of the charge 22 is in a liquid state at typical operation conditions of the refrigeration application. The charge may comprise or consist of different medias. Typical refrigerants such as HFC (R410A, R32, R134a), HCFC's (R22, R142b), HFO (R1234yf, R1234ze) or natural refrigerants (R290, R744), either with a single media or as a blend of multiple medias may be chosen. Additionally, the charge may be pressurized with an inert gas such as nitrogen. The charge 22 may comprise a refrigerant other than CO2.
[0040] The superheat defining mechanism 2 comprises a diaphragm top 28, a diaphragm bottom 29 and/or a diaphragm support 30, wherein the diaphragm support 30 is shown in
[0041] A connection element 15 is provided for connecting superheat defining mechanism (2), particularly the diaphragm bottom 29, to the valve body 1. More details on the connection element 15 will be shown with reference to
[0042] The high pressure inlet 11 is provided between the low pressure outlet 12 on the one side and the first suction gas port 13 and/or second suction gas port 14 on the other side with respect to an axial direction of the valve body 1. The axial direction of the valve body 1 corresponds to the vertical direction in
[0043] Usually, the expansion direction in block valves occur from a lower high pressure inlet to an upper low pressure outlet, i.e. in the opposite direction it occurs at the shown embodiments. One reason to do this is to avoid the need of a piston seal 34 on the pushpin 23 and/or cone. In the shown embodiments, a corresponding seal 34 is present and the expansion direction is from the upper high pressure inlet 11 to the lower low pressure outlet 12. In other embodiments of the invention, the expansion direction could be inverted.
[0044]
[0045] The diaphragm assembly of
[0046] In all embodiments, the charge 22 may comprise ballast material, which functions as a thermal-transfer-delay means. The ballast material is indicated by spherical objects between the diaphragm 21 and the diaphragm top 28. The ballast material of the charge 22 may comprise diatomite, a molecular sieve and/or marinite and/or may be provided in cylindrical, cubic, conical, spherical and/or toroidal form.
[0047] The time constant of the valve is a function of the dimensions and materials of the superheat defining mechanism 2 as well as its charge 22. The superheat defining mechanism 2 is designed for providing a time constant of greater than 30 seconds, in particular greater than 60 seconds. The charge 22 may be chosen such that it determines the value of the time constant for the most part.
[0048] The embodiments of
[0049] The embodiments of
[0050] According to the embodiment of
[0051] An additional diaphragm support 30 is shown in
[0052]
[0053] A known way of fixing and sealing the diaphragm assembly is by means of a thread and an O-ring 25. The embodiment of
[0054] Alternatively or additionally, laser welding, soldering and/or laser brazing may be applied to the interfacing elements, such as the connection element 15 and the valve body 1. An aluminium interface element or connection element 15 could be brazed to the stainless steel lower capsule, diaphragm bottom 29 and/or valve body prior to the laser welding.
[0055] A gap 33 is shown radially inwards of the connection element 15. The gap 33 may be located between the connection element 15 and the pushpin 23 for providing a fluid passage between the first and second suction gas ports 13, 14 and the diaphragm 21. The diaphragm 21 is not shown in
[0056]
[0057] Features not shown in the figures may include an additional check valve provided at the thermal expansion valve. The check valve may be an internal check valve, allowing the valve to be used in reversible systems, where the expansion function/orifice 36 shown in
[0058] While the present disclosure has been illustrated and described with respect to a particular embodiment thereof, it should be appreciated by those of ordinary skill in the art that various modifications to this disclosure may be made without departing from the spirit and scope of the present disclosure.