This invention relates to a braze-free connection for securing a flow line to an operating unit of a flow system.
This invention is ideally suited for joining a refrigerant line to an operating unit of an air conditioning unit such as a heat exchanger or the like. A good deal of the reliability of an air conditioning system is related to the skill of the technician who installs the system. The industry, however, is faced with a decrease in the number of skilled technicians for installing these types of systems. Among the tasks requiring the most skill and time to complete is the brazing of the refrigerant line connections. Any leaks in the connections reduces the amount of charge in the system causing the system to operate at less than optimum efficiency and such loss of charge can eventually lead to compressor and other system component failures.
A number of braze-free connectors have been developed in the prior art, which are generally referred to as quick connects. Quick connects were used to some extent in refrigeration systems back in the 1980s, but fell into disfavor because of leakage and reliability problems associated with these devices.
It is therefore an object of the present invention to improve braze-free connectors, and in particular, braze-free connectors employed in refrigerant systems.
It is a further object of the present invention to improve the reliability of braze-free connectors used in refrigerant systems.
Yet another object of the invention is to provide a reliable braze-free connection for joining a refrigerant line to a component part of a refrigeration system.
These and other objects of the present invention are attained by a braze-free connector for attaching a flow line to an operating unit of a flow system. One end of the connector is permanently secure to the unit and contains a central flow passage that extends through the connector. The connector includes a radially expanded cavity that surrounds a section of the flow passage and an entranceway to the cavity that diverges from the free end face of the connector towards the cavity. A flow line is inserted into the entranceway and is passed through the cavity. A flowable pressure activated adhesive or sealant is stored in the cavity. An annular-shaped ferrule is slidably contained within the entranceway and a drive is arranged to move the ferrule axially into the entranceway to apply activating pressure upon the adhesive while at the same time the ferrule is compressed radially within the diverging section of the entranceway into the sealing contact with the refrigerant line.
For a better understanding of these and other objects of the invention, reference will be made to the following detailed description of the invention, which is to be read in association with the accompanying drawings, wherein:
Turning initially to
As best illustrated in
The body section of the connector has a central passage that includes a first bore section 20 and a second bore section 21 that is coaxially aligned with said first bore section. The first bore section passes inwardly through an entranceway 27 located at the front face 28 of the body and has a diameter that is slightly larger than the second bore section 21. A radially disposed shoulder 23 is established between at the point where the two bore sections meet at about the midsection of the body. The first bore section is arranged to provide a close running fit with refrigerant line 25, which is slidably received into the connector through entranceway 27. In assembly, the refrigerant line is inserted into the connector body through the entranceway until it is arrested against the shoulder 23 (see
A radially expanded cavity 30 is contained within the first bore section 20 which surrounds the refrigerant line when the line is arrested against shoulder 23. The entranceway 27 at the front end of the connector body is axially aligned with the central bore and diverges uniformly from the front face 28 of the body toward the cavity so that the throat opening to the cavity has a diameter that is slightly larger than the diameter of the first bore section 20.
An annular-shaped ferrule 40 to pass through the throat into the cavity is mounted within the entranceway 27 and contains a tapered outer surface 41 that compliments the diverging inner wall surface of the entranceway. The back end 41 of the ferrule contains a raised flange 43 that is arranged to ride in a circular groove 44 formed in the inner wall of nut 18. The inside diameter of the ferrule is slightly larger than the outside diameter of the refrigerant line. Initially, prior to threading the nut 18 onto the body of the connector, the ferrule and nut assembly is slipped onto the end of the refrigerant line and passed back a sufficient distance so that the end of the refrigerant line can be registered against shoulder 23. Once the line is registered, the nut is moved forward over the line and is mated with the threads 17 on the connector body. As the nut is tightened, the tip 45 of the ferrule moves into the cavity and is forced downwardly in a radial direction by the diverging inner wall of entranceway 27. The tip end of the ferrule is driven into locking contact with the registered refrigerant line to create a secure seal at the entrance to the cavity 30.
Prior to threading the nut assembly onto the connector, the cavity region surrounding the refrigerant line is filled with a pressure actuated adhesive 48 (
Turning now to
In this embodiment of the invention, the pressure activated adhesive 48 is stored inside a flaccid pouch 50 that is arranged to fit snuggly within the cavity 30. As explained in detail above, the tip of the ferrule 40 is moved into the cavity as the nut 18 is advanced and is allowed to penetrate the pouch causing the pouch to burst at a given pressure, which is the activation pressure of the adhesive. The adhesive is now allowed to flow into the joint region surrounding the refrigerant line, where it will cure to provide a secure leak tight seal. An O-ring seal 55 is mounted within the connector body at about the shoulder 23. The O-ring is arranged to engage the leading edge of the refrigerant line 25 and seal this end of the first bore 20 of the connector body.
When the flaccid pouch bursts, it will produce a clearly audible noise thus alerting the technician that the adhesive has been activated. In addition, a small, clear window 57 is provided in the connector body that allows the technician to view the joint region. In most cases, the adhesive has a clearly discernable color. As the adhesive flows past the window, it will provide a visual indication that the adhesive has been activated. A colorant may also be added to the adhesive to enhance the visual presentation.
While this invention has been particularly shown and described with reference to the preferred embodiment in the drawings, it will be understood by one skilled in the art that various changes in its details may be effected therein without departing from the teachings of the invention.