[0001] The present invention relates to a refrigerant dehydrating filter according to the
preamble of claim 1 and to a method of manufacturing such a filter.
[0002] It is well known that refrigeration systems need a filter to separate contaminating
water from refrigerant and to trap various particles and other impurities. Dehydrating
filters are known and are designed primarily to remove water from the refrigerant.
As used herein, the term "refrigeration system" includes air conditioning systems
and heat pumps etc and the term "refrigerant' should be understood to extend to fluids
used in all these types of equipment.
[0003] Compact filters are also known in which an inlet hole into the filter and an outlet
hole from the filter are found on a common base in order to present a compact design
and to suit preferred applications. Alternatively, filters are known in which the
inlet and outlet holes are arranged in different orientations due to their specific
intended application.
[0004] European Patent Application No. 0 915 308 discloses such a filter, in which the refrigerant
flows from an inlet up through desiccating material before the flow is reversed to
send it down a tube to an outlet coaxial with the inlet that ends beyond the inlet.
When the filter is screwed into a base connected to a condenser unit the inlet and
outlet make connections with pipes defined in the base.
[0005] This design, and others in which the inlet and outlet are arranged in a different
manner due to their specific type of application, make the filter easy to fit. However,
this type of filter is structurally complex with a number of components, which must
all be located correctly during the assembly process. This leads to assembly problems
such that a filter can take a long time to construct. Additionally the various components
may not be located securely, which can cause faulty seals.
[0006] European patent application 0 838 642 discloses a removable reservoir connected to
a header of a condenser for a refrigeration circuit through which refrigeration fluid
is passed. The reservoir is produced in the form of a replaceable cartridge provided
with a connection able to cooperate with a base of conjugate shape which is fixed
to the header and connected to the latter by an inlet manifold and an outlet manifold
for the refrigeration fluid.
[0007] Swiss Patent No. 342,589 discloses a dehydrating filter characterised by a cylindrical
reservoir, a fitting detachably installed in the top part of the reservoir and provided
with inlet and outlet ports, an adapter secured in the fitting, two strainers each
arranged at a distance from the top and bottom ends of the reservoir, a desiccating
agent located between the two strainers, the strainers being provided with coaxial
bores, and a vertical tube extending through said bores, the lower end of the tube
terminating in the base of the reservoir while the upper end of the tube extends into
the adapter and is tightly connected thereto. The adapter has an opening connecting
a line for refrigeration fluid to the inside of the vertical tube via an inlet in
the fitting, and the fitting having an outlet connected to a further line for the
fluid, the whole assembly being so arranged that the fluid is able to flow through
the inlet in the fitting, the opening in the adapter and down through the vertical
tube, then up through the desiccating agent and finally out through the outlet in
the fitting.
[0008] European patent application 0 915 307 discloses a fluid tank for an air conditioning
condenser. The tank is screwed axially into a connecting base which is in turn brazed
to a header box of the condenser. It contains an interchangeable axial cartridge and
communicates with the header box through ducts provided in the connecting base.
[0009] According to an aspect of the present invention there is provided a refrigerant dehydration
filter, comprising an external tube sealed at one end to define a return cavity; an
internal tube coaxial with said external tube; a first external connection to said
external tube and a second external connection to said internal tube to facilitate
a transfer of refrigerant between said tubes, wherein said external tube contains
desiccating material, characterised in that: said filter further comprises a filter
capsule containing said desiccating material, said filter capsule being fitted within
said external tube and having a coaxial tubular section through which said internal
tube passes. According to another aspect of the present invention, a method for manufacturing
a filter of this type is provided.
[0010] The present invention will now be described by way of example only, with reference
to the accompanying drawings, of which:
Figure 1 is a longitudinal side elevation of a dehydrating filter embodying the present invention;
Figure 2 is an enlarged sectional view of part of the filter shown in Figure 1; and
Figure 3 is a transverse section of a portion of the filter shown in Figure 2.
[0011] A dehydrating filter embodying the present invention is illustrated in
Figure 1. The filter has a hollow external casing
11,
12 of a cylindrical shape, in two interconnecting sections. The first of said sections
11 is substantially cup-shaped and is formed from an aluminium extrusion with a relatively
thick base portion
13. Section
11 acts as a cover for a second section
12, constituting a major portion of the device.
[0012] The second section
12 also has a cylindrical body, open at one end and designed to couple up with the first
section
11 by means of soldered joint
14. The other end of the second section
12 is restricted by a pair of coaxial sleeve sections
15,
16 that terminate in a hole
17. The second section
12 houses a filter capsule within its cylindrical volume. This capsule comprises a cup
section
18 of cylindrical shape with an external diameter that can fit within the internal diameter
of the section of the hollow external casing
12. The cup
18 has a coaxial tubular section
19 through which a tubular insert
20 passes.
[0013] A free annular space is provided between the external surface of the coaxial tubular
section
19 and the internal surface of the cup section
18. This annular space is filled with a desiccating material
21 located between two annular felt discs, in the form of a cylindrical sandwich but
having a hole down its middle. On the other side of the felt washers there is provided
at one end a drilled stopper
23, turned towards the centre of the casing, while at the other end is the drilled base
24 of the cup section
18.
[0014] The tubular insert
20 passes into the coaxial tubular section
19 of the cup
18 starting off as a plain tubular section and then becoming a toothed or splined section
25 that extends towards the second sleeve
16 of the second part
12 of the casing, passing into it. The outward facing spline end
25 on the tubular insert
20 has an expanded section
26 which abuts the end of the sleeve section
16 preventing the tubular insert
20 from dropping inside the second part of the casing. The end of the tubular insert
20 has an enlarged diameter
27 onto which a gasket
28 is positioned. The gasket
28 prevents the input fluid from mixing with the output fluid from the filter when it
is positioned within the base
29 of a condenser in line with a fluid input channel
30 and fluid output channel
31, as shown in
Figure 2. A seal is also ensured due to the provision of two O-ring seals
32 mounted beyond the sleeve section
16.
[0015] The end of the tubular insert
20 facing the inside of the casing has a locating ring or similar
33 that keeps the capsule in position with respect to the tubular insert
20. The filter has input channels between the internal surfaces of the sleeve section
16 and the splines
25 on the tubular insert
20. These channels lead into sleeves
15 before passing through the drilled base
24 of the bucket section
18. Subsequently, the input fluid is admitted into the first felt washer
22, passing through the desiccating material
21 before reaching the second felt washer
22 followed by the drilled stopper
23 and escapes into the casing
11,
12. The fluid moves unimpeded into the open free end of the tubular insert
20 and passing through it escapes at the other coaxial end through the seal
27. It can be seen that the input and output channels are coaxial and therefore the
filter is particularly compact and straightforward.
[0016] Locating ring
33 enables the very rapid assembly of the components of the filter. For example, the
casing
11,
12 is formed in aluminium, while tubular insert
20 is fabricated in a plastic material, such as polyamide and is relatively straightforward
to manufacture, The gasket is in hydrogenated nitrile to create a seal.
[0017] During manufacture, the external cylindrical casing is obtained by extrusion with
a similar process being used to produce a second section
12 that completes the casing for the filter. Next, the felt washer
22 is inserted into the cup section
18 up against the drilled base
24. The annular space is then filled with the desiccating material
21 and the second felt washer
22 is positioned in the cup section
18 to contain the desiccating material. Finally, the drilled stopper
23 is put in place by pressing it into the cup section
18. The capsule is therefore ready to be assembled into the complete filter.
[0018] The second section of the extruded cylindrical casing forms sleeve sections
15,
16 in an extruded body in aluminium. External threading of this sleeve section
18 is then carried out thereby allowing the filter to be positioned into the hole
29.
[0019] This is then followed by a greasing stage then the tubular insert
20 is located into hole
17 of the second section
12 of the casing until the widened part
26 of the splines
25 is up against the end of the sleeve section
16 which prevents the tubular insert from entering the second section
12 of the casing.
[0020] The constructed capsule is inserted into the tubular insert
20 and held in place with locating ring
33. The casing is then assembled by soldering the two sections once they have been brought
together at
14. This is done by fitting the two sections
11,
12 together and creating an annular solder joint.
[0021] The two O-ring seals are fitted on the external surface of the sleeve section
16. A ring type gasket
28 is fitted on the large diameter end section
27 of the tubular insert
20. Once the assembly is completed, an air-tightness test is performed to ensure that
performance can be guaranteed in use.
1. A refrigerant dehydration filter, comprising
an external tube (11,12) sealed at one end to define a return cavity;
an internal tube (20) coaxial with said external tube;
a first external connection (30) to said external tube and a second external connection
(31) to said internal tube to facilitate a transfer of refrigerant between said tubes,
wherein said external tube contains desiccating material (21),
characterised in that:
said filter further comprises a filter capsule (18,19,22,23) containing said desiccating
material, said filter capsule being fitted within said external tube (11,12) and having
a coaxial tubular section (19) through which said internal tube (20) passes.
2. A refrigerant dehydration filter according to claim 1, wherein said external tube
comprises:
a first interconnecting section (11) which is substantially cup-shaped; and
a second interconnecting section (12) which connects to the first interconnecting
section at one end and which houses said filter capsule.
3. A filter according to claim 1 or claim 2, wherein said external tube provides a substantially
larger cross sectional area compared to the cross sectional area of said internal
tube.
4. A filter according to any of claims 1 to 3, wherein an input flow is directed to said
external tube (11,12) and the return flow is received from said internal tube (20).
5. A filter according to claim 1, wherein said tubes (20, 11,12) have a cylindrical cross-section.
6. A filter according to any of claims 1 to 5, wherein said internal tube (20) consists
of a tubular insert having an externally splined area.
7. A filter according to claim 6, in which the external tube (11,12) is restricted at
its open end by a sleeve section (16) and an outward facing splined end (25) of said
tubular insert (20) has a widened end (26) that abuts the end of said sleeve section.
8. A filter according to any of claims 1 to 7, wherein said internal tube (20) consists
of a tubular insert terminated with an enlarged diameter end (27) on which a gasket
(28) is positioned.
9. A filter according to any of claims 1 to 8, with termination fittings of a tubular
insert (20) of a casing section (12) comprising at one end a locating ring (33) positioned
between said tubular insert and said capsule (18, 19, 23), with the other end (26)
widened to abut the end of the sleeve section (16).
10. A filter according to any of claims 1 to 9, arranged as a sandwich within a cup section
(18) with a drilled bottom end (24) assembled in sequence with an initial felt washer
(22), said desiccating material (21), a second felt washer (22) and a drilled stopper
(23).
11. A filter according to any of claims 1 to 10, having securing means (33) to hold the
capsule (18, 19, 23) in position relative to the internal tube (20).
12. A method of manufacturing a refrigerant dehydration filter according to any of claims
1 to 10, by performing the steps of:
obtaining a hollow external casing (11, 12) and the component parts of said filter;
producing a second section (12) of this extruded casing creating sleeve sections (15,
16) with external threading to one of the sleeve sections;
performing a degreasing stage;
fitting a tubular insert (20) into a hole (17) in the second section (16) of said
casing (11, 12) until the widened part (26) of splines (25) of the tubular insert
abuts up against the end of the sleeve section (16);
fitting a capsule (18, 19, 22, 23) into said tubular insert (20); and
fitting a locating ring (33) of the capsule on to the tubular insert.
13. A method of manufacturing a refrigerant dehydration filter according to claim 12,
wherein said method further comprises the steps of:
obtaining a capsule (18, 19, 22, 23) having cylindrical cup section (18) and a coaxial
tubular section (19); and
filling the capsule with the desiccating material and locating a stopper (23) into
the cup section.
1. Kältemitteldehydratisierungsfilter, der folgendes aufweist:
- ein Außenrohr (11, 12), das an dem einen Ende dicht verschlossen ist, um einen Rockfuhrungshohlraum
zu bilden;
- ein Innenrohr (20), das mit dem Außenrohr koaxial ist;
- eine erste äußere Verbindung (30) mit dem Außenrohr und eine zweite äußere Verbindung
(31) mit dem Innenrohr, um eine Überführung von Kältemittel zwischen den Rohren zu
erleichtern, wobei das Außenrohr ein Trockenmittel (21) enthält,
dadurch gekennzeichnet,
daß der Filter ferner eine Filterkapsel (18, 19, 22, 23) aufweist, die das Trockenmittel
enthält, wobei die Filterkapsel innerhalb von dem Außenrohr (11, 12) angebracht ist
und einen koaxialen rohrförmigen Bereich (19) hat, durch den das Innenrohr (20) hindurchgeht.
2. Kältemitteldehydratisierungsfilter nach Anspruch 1,
wobei das Außenrohr folgendes aufweist:
- einen ersten Verbindungsbereich (11), der im wesentlichen becherförmig ist; und
- einen zweiten Verbindungsbereich (12), der an dem einen Ende mit dem ersten Verbindungsbereich
(12) verbunden ist und die Filterkapsel enthält.
3. Filter nach Anspruch 1 oder 2,
wobei das Außenrohr gegenüber der Querschnittsfläche des Innenrohrs eine erheblich
größere Querschnittsfläche hat.
4. Filter nach einem der Ansprüche 1 bis 3,
wobei eine Eingangsströmung zu dem Außenrohr (11, 12) gerichtet ist und die Rückströmung
von dem Innenrohr (20) aufgenommen wird.
5. Filter nach Anspruch 1,
wobei die Rohre (20, 11, 12) einen zylindrischen Querschnitt haben.
6. Filter nach einem der Ansprüche 1 bis 5,
wobei das Innenrohr (20) aus einem rohrförmigen Einsatz besteht, der einen Bereich
mit Außenverzahnung hat.
7. Filter nach Anspruch 6,
wobei das Außenrohr (11, 12) an seinem offenen Ende von einem Hülsenbereich (16) begrenzt
ist und ein nach außen weisendes verzahntes Ende (25) des rohrförmigen Einsatzes (20)
ein erweitertes Ende (26) hat, das an dem Ende des Hülsenbereichs anliegt.
8. Filter nach einem der Ansprüche 1 bis 7,
wobei das Innenrohr (20) aus einem rohrförmigen Einsatz besteht, der mit einem Ende
(27) mit vergrößertem Durchmesser endet, an dem eine Dichtung (28) positioniert ist.
9. Filter nach einem der Ansprüche 1 bis 8,
wobei Endanschlußelemente eines rohrförmigen Einsatzes (20) eines Gehäusebereichs
(12) an dem einen Ende einen Positionierring (33) aufweisen, der zwischen dem rohrförmigen
Einsatz und der Kapsel (18, 19, 23) positioniert ist, wobei das andere Ende (26) so
erweitert ist, daß es an dem Ende des Hülsenbereichs (16) anliegt.
10. Filter nach einem der Ansprüche 1 bis 9,
der als Sandwichanordnung innerhalb eines Becherbereichs (18) mit einem mit Bohrungen
versehenen Bodenende (24) angeordnet ist, das der Reihe nach mit einer ersten Filzscheibe
(22), dem Trockenmittel (21), einer zweiten Filzscheibe (22) und einem mit Bohrungen
versehenen Stöpsel (23) zusammengebaut ist.
11. Filter nach einem der Ansprüche 1 bis 10,
der eine Befestigungseinrichtung (33) hat, um die Kapsel (18, 19, 23) relativ zu dem
Innenrohr (20) in ihrer Position zu halten.
12. Verfahren zum Herstellen eines Kältemitteldehydratisierungsfilters nach einem der
Ansprüche 1 bis 10 durch Ausrühren der folgenden Schritte:
- Bereitstellen eines hohlen äußeren Gehäuses (11, 12) und der Bestandteile des Filters;
- Herstellen eines zweiten Bereichs (12) dieses extrudierten Gehäuses unter Bildung
von Hülsenbereichen (15, 16) mit Außengewinde an dem einen von den Hülsenbereichen;
- Durchführen eines Schmierschritts;
- Einpassen eines rohrförmigen Einsatzes (20) in ein Loch (17) in dem zweiten Bereich
(16) des Gehäuses (11, 12) bis das erweiterte Teil (26) von Verzahnungen (25) des
rohrförmigen Einsatzes an dem Ende des Hülsenbereichs (16) anliegt;
- Einpassen einer Kapsel (18, 19, 22, 23) in den rohrförmigen Einsatz (20); und
- Anbringen eines Positionierrings (33) der Kapsel an dem rohrförmigen Einsatz.
13. Verfahren zum Herstellen eines Kältemitteldehydratisierungsfilters nach Anspruch 12,
wobei das Verfahren ferner die folgenden Schritte aufweist:
- Bereitstellen einer Kapsel (18, 19, 22, 23), die einen zylindrischen Becherbereich
(18) und einen koaxialen rohrförmigen Bereich (19) hat; und
- Füllen der Kapsel mit dem Trockenmittel und Positionieren eines Stöpsels (23) in
dem Becherbereich.
1. Filtre déshydrateur de fluide réfrigérant comprenant
un tube (11, 12) extérieur scellé à une extrémité pour définir une cavité de retour
;
un tube (20) intérieur coaxial au tube extérieur ;
une première connexion (30) extérieure de connexion au tube extérieur et une deuxième
connexion (31) extérieure de connexion au tube intérieur pour faciliter un transfert
de fluide frigorifique entre les tubes, le tube extérieur contenant de la matière
(21) de dessiccation.
caractérisé en ce que :
le filtre comprend en outre une capsule (18, 19, 22, 23) de filtre contenant la matière
de dessiccation, la capsule de filtre étant adaptée dans le tube (11, 12) extérieur
et ayant une section (19) tubulaire coaxiale dans laquelle passe le tube (20) intérieur.
2. Filtre déshydrateur de fluide réfrigérant, suivant la revendication 1 dans lequel
le tube extérieur comprend :
une première section (11) d'interconnexion, qui est sensiblement en forme de coupelle
; et
une deuxième section (12) d'interconnexion qui communique avec la première section
d'interconnexion à une extrémité et qui loge la capsule de filtre.
3. Filtre suivant la revendication 1 ou la revendication 2, dans lequel le tube extérieur
ménage une surface de section transversale sensiblement plus grande que la surface
de section transversale du tube intérieur.
4. Filtre suivant l'une quelconque des revendications 1 à 3, dans lequel un courant d'entrée
est envoyé dans le tube (11, 12) extérieur et le courant de retour est reçu du tube
(20) intérieur.
5. Filtre suivant la revendication 1, dans lequel les tubes (20, 11, 12) ont une section
cylindrique.
6. Filtre suivant l'une quelconque des revendications 1 à 5, dans lequel le tube (20)
intérieur consiste en un insert tubulaire ayant une zone cannelée extérieurement.
7. Filtre suivant la revendication 6, dans lequel le tube (11, 12) extérieur est rétréci
à son extrémité ouverte par une section (16) de manchon et une extrémité (26) cannelée
faisant face à l'extérieur de l'insert (20) tubulaire a une extrémité élargie qui
bute sur l'extrémité de la section de manchon.
8. Filtre suivant l'une quelconque des revendications 1 à 7, dans lequel le tube (20)
intérieur consiste en un insert tubulaire terminé par une extrémité (27) de diamètre
agrandi sur laquelle est placée une garniture (28) d'étanchéité.
9. Filtre suivant l'une quelconque des revendications 1 à 8, ayant des raccords d'extrémité
d'un insert (20) tubulaire d'une section (12) de boîtier comprenant à une extrémité
une bague (33) de positionnement placée entre l'insert tubulaire et la capsule (18,
19, 22, 23), tandis que l'autre extrémité (26) s'élargit pour venir buter sur l'extrémité
de la section (16) de manchon.
10. Filtre suivant l'une quelconque des revendications 1 à 9, disposé sous la forme d'un
sandwich dans une section (18) en coupelle avec une extrémité (24) de fond percé,
assemblée en séquence avec une rondelle (22) initiale en feutre, la matière (21) de
dessiccation, une seconde rondelle (22) en feutre et un arrêt (23) percé.
11. Filtre suivant l'une quelconque des revendications 1 à 10, ayant des moyens (33) de
fixation pour maintenir la capsule (18, 19, 23) en position par rapport au tube (20)
intérieur.
12. Procédé de fabrication d'un filtre de déshydratation de fluide réfrigérant suivant
l'une quelconque des revendications 1 à 10, en effectuant les stades qui consistent
:
à obtenir un boîtier (11) extérieur creux et les parties constituant le filtre ;
à produire une deuxième section de ce boîtier extrudé en créant des sections (15,
16) de manchon ayant un filetage extérieur à l'une des sections de manchon ;
à effectuer un stade de diminution;
à adapter l'insert (20) tubulaire dans un trou (17) de la deuxième section (16) du
boîtier (11, 12) jusqu'à ce que la partie (26) élargie de cannelures (25) de l'insert
tubulaire vienne buter sur l'extrémité de la section (16) de manchon ;
à adapter une capsule (18, 19, 22, 23) dans l'insert (20) tubulaire ;
à adapter une bague (33) de mise en position de la capsule sur l'insert tubulaire.
13. Procédé de fabrication d'un filtre de déshydratation de fluide réfrigérant, suivant
la revendication 12, dans lequel le procédé consiste en outre
à obtenir une capsule (18, 19, 22, 23) ayant une section (18) cylindrique en forme
de coupelle, et une section (19) tubulaire coaxiale ;
à emplir la capsule de matière de dessiccation et à mettre un arrêt dans la section
en forme de coupelle.