The disclosure relates to a cold spray nozzle assembly used in a cold spray system that deposits a powder material onto a substrate.
Cold spray systems range in capability from high temperature, high pressure systems to lower pressure and temperature systems. In all cases it is crucial to have a nozzle with the correct geometry capable of withstanding the temperatures and pressures used in the device. These nozzles are designed to fit the equipment using special flanges, tapered sleeves, or the like. Further, the guns to which the nozzles are affixed are typically designed as pressure vessels generally for the purpose of mixing and porting the gases and powders to the nozzle.
Known assemblies for connecting nozzles to cold spray guns are complex and expensive. In addition to the cost of components for connecting the nozzle to the gun, these assemblies can be difficult or impossible to fit into small spaces, which limit their use.
Based upon the foregoing, the need exists for a simpler, more cost effective and compact structure for connecting the nozzle to a cold spray gun.
The present disclosure provides a cold spray nozzle and gun which simplifies the connection of the nozzle to the gun, and helps to provide a much more compact nozzle assembly, thereby allowing a cold spray gun to be used to apply powdered materials to substrates in locations which would be difficult if not impossible to reach using conventional devices.
In accordance with the present disclosure, a cold spray nozzle assembly is provided having a conduit for carrying at least one of a heated gas and a powder; a nozzle; and a compression tube fitting connecting the nozzle to the conduit.
One compression tube fitting can include a receiving fitting attached from the conduit and receiving an end of the nozzle, a compression ring and a compression nut, the compression ring being mounted between the receiving fitting and the compression nut and surrounding the nozzle, whereby tightening the compression nut onto the receiving fitting compresses the compression ring onto the nozzle.
A step can be provided on an outer diameter of the nozzle, the step interacting with the receiving fitting to properly locate the nozzle to the receiving fitting.
The nozzle can be provided with a notch on an outer diameter which is aligned with the compression ring whereby the compression ring engages the notch when the compression nut is tightened relative to the receiving fitting.
The receiving fitting can be threaded to the conduit.
The nozzle can have an inlet and an outlet end and a throat section, and an inlet for feeding the powder to the nozzle can be provided in the form of a tube or other conduit for carrying the powder, wherein the tube extends along an axis of the nozzle from the inlet end and through the throat section of the nozzle.
The inlet end of the nozzle can be provided with rounded edges.
In accordance with a further aspect of the present disclosure, a cold spray nozzle assembly is provided which can include a nozzle having an inlet end, an outlet end and a throat section between the inlet end and the outlet end, a conduit for carrying a heated gas to the inlet end of the nozzle, an inlet for feeding powder to the nozzle, wherein the inlet is a tube for carrying the powder, the tube extending along an axis of the nozzle from the inlet end, and through the throat section.
This aspect of the invention can be combined with compression tube fittings as discussed above, for example connecting the nozzle to the conduit.
In further accordance with the disclosure, a cold spray gun is provided having a conduit communicated with a source of gas and a source of powder; a nozzle; and a compression tube fitting connecting the nozzle to the conduit.
The cold spray gun can have a plurality of conduits supplying gas and powder as well as thermocouple access upstream of the nozzle. Because of this arrangement, addition of sensors, multiple powder feeds, and changing the distance between powder injection points and the nozzle can be accomplished with common hardware. This simplicity and reduced cost hardware also enables the fabrication of multiple gun-nozzle assemblies to reduce contamination issues when changing powders in cold spray systems.
The details of one or more embodiments are set forth in the accompanying drawings and the description below. Other features, objects, and advantages will be apparent from the description and drawings, and from the claims.
A detailed description of embodiments of the present disclosure appears below, with reference to the attached drawings, wherein:
a illustrate an embodiment of a nozzle in accordance with the present disclosure;
Like reference numbers and designations in the various drawings indicate like elements.
The disclosure relates to a cold spray nozzle assembly and to a cold spray gun including the nozzle assembly, wherein the assembly has more compact structure which allows for reduced cost and increased versatility in use to apply powders to substrates as desired.
Cold spray systems range in capability from high temperature, high pressure systems to lower pressure and temperature systems. Typical operating ranges for such systems are as follows: 10-50 bar operating pressures with ambient to 1200° C. gas temperatures. In all cases, it is critical to have a nozzle with the correct geometry, wherein the nozzle is capable of operating in the temperatures and pressures used in the device, and with a design capable of accelerating the gas and powdered materials to the velocities critical for consolidation. Known nozzles are designed to be connected to pressure vessels, often called the “gun”, using special flanges, tapered sleeves or threads. Further, the pressure vessels are generally designed to mix and port the gases and powders to the nozzle.
The present disclosure provides a much more compact assembly as compared to known devices, and does so by connecting the nozzle to a flow conduit of the cold spray nozzle device using a compression tube fitting, which allows for a tight seal with the nozzle through commonly available temperature and pressure rated fittings and ferrules. Construction of the gun can then be accomplished using standard tubing and fittings capable of withstanding the required temperatures and pressures.
Configurations of this type can be constructed resulting in minimized overall size, at a minimum cost and with great flexibility in system design and monitoring. One example of the versatility produced with such assemblies is that a cold spray configuration can be assembled for use in applying powder coatings to internal diameters wherein the internal diameter coatings can be applied to internal diameters as small as three inches. In a second example fittings can be assembled allowing powder to be introduced several inches (4 to 12 inches for example) from the nozzle with multiple thermocouples through that length monitoring gas temperature history from the point of powder injection to the nozzle.
In use, hot gas is fed through conduit 14 to nozzle 12, and powder is fed through the flow of hot gas in conduit 14 such that the hot gas and powder are propelled through the nozzle 12 for application to a substrate as desired.
In an apparatus such as that described in the present disclosure, powder can be heated by being carried along a conduit along with a hot gas, and the extent to which the powder is heated can be controlled by adjusting where with respect to the flow of hot gas and nozzle the powder is injected. The longer the powder is carried by the hot gas prior to being sprayed through the nozzle, the more heat is transferred to the powder, which can be desired or undesirable, depending upon the application and the powder being used.
Referring back to
As shown in
Compression ring 54 is shown positioned for axial compression between compression nut 56 and receiving fitting 52, and such compression causes compression ring 54 to mechanically secure nozzle 12 relative to receiving fitting 52 (and conduit 14 to which fitting 52 would be connected), and also to seal nozzle 12 in this position.
Compression nut 56 has internal threads 68 to interact with outer threads 66 of neck portion 60. It should be appreciated that the orientation of threads as shown in the embodiment of
Simplifying the structure in accordance with the present disclosure greatly reduces the stress on the nozzle and also orients most forces in the assembly to be compressive. The outside diameter complexity of the nozzle is also greatly reduced, allowing for reduced cost nozzles made from lower strength materials. In comparison, other attachment techniques require threading of the nozzle material, flanges machined into the nozzle with special high temperature seals, or gas type tapers and special tapered flanges, all of which add significantly to the cost of the device. Brittle ceramic or cemented carbides, for instance, are difficult to machine threads or flanges where localized tensile stresses then limit the structural performance. This forces the use of larger sections of material to reduce the stress sufficiently. These materials can also be costly and difficult to machine thus raising the production costs. A simplified straight diameter of common tube size either which can be notched or stepped as described below provides a reduced size material with reduced machining requirements and minimal stress concentrations.
It should also be noted that the primary complexity of a typical cold spray gun is the nozzle assembly. The present disclosure allows for the gun to be assembled primarily from off-the-shelf compression fittings and tubings, greatly reducing costs and complexity. Further, by maintaining a ratio of tube area versus nozzle throat area preferably not less than 16:1, proper mixing of powder with hot gas is possible without the need for a special mixing chamber, while the velocity remains sufficiently low that the powder material is not deposited on turns of the tubing leading up to the nozzle. This allows for the complex mixing chambers of known guns to be completely avoided, and further allows for numerous different points of powder injection to provide for increased or decreased powder heating as may be desired.
The embodiments of
In the embodiment of
In the embodiment of
Alternatively, instead of a step 70, a notch 80 (
It should be appreciated that the configurations of
The configuration of
Considering the above, it should be appreciated that the cold spray nozzle in accordance with the present disclosure and cold spray gun including same allow for great versatility in assembling the cold spray gun such that a gun can be configured to provide access to the particular substrates being coated in a particular application. Further, the assembly is simple and cost effective, and well-suited to the various operating parameters of cold spray coating.
As shown, powder injection can be used through a tube 96 which can be bent into alignment with connection 90 and conduit 92 as shown. Further, thermocouple 98 can be threaded into connection 88 and out of connection 90 and along conduit 92. By positioning a bend 99 near the end of the thermocouple, the tip of the thermocouple can be aligned in the center of the tube for proper gas temperature measurement.
In the configuration illustrated in
In the illustrated configuration, it should be noted that the powder injection tube 95 extends through connection 86 and a central portion of four-way fitting 82 through connection 88 and into or through the throat section of nozzle 12. This aspect is not illustrated in great detail in
One or more embodiments of the present disclosure have been described. Nevertheless, it will be understood that various modifications may be made without departing from the spirit and scope of the disclosure.
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/US2014/056936 | 9/23/2014 | WO | 00 |
Number | Date | Country | |
---|---|---|---|
61882291 | Sep 2013 | US |