Temperature Controlled Surface Coating Application System
20220401977 ยท 2022-12-22
Inventors
Cpc classification
B05B7/2491
PERFORMING OPERATIONS; TRANSPORTING
B05B7/1606
PERFORMING OPERATIONS; TRANSPORTING
B05B12/006
PERFORMING OPERATIONS; TRANSPORTING
B05B12/10
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
Systems and methods for controlling the temperature of liquid coatings discharged from air pressurized spray pots and the like are described. The non-electrical temperature-controlled systems rely on the pressurization and expansion of air and/or other gases to lower or increase the temperature of the sprayed liquid coating. The system includes cooling coils surrounding a pressurized spray pot contained within an insulated enclosure. Pressurized ambient air is passed through a cooling vortex cylinder before passing into the cooling coils. The cooled air preferably then passes into an insulated envelope surrounding the discharge lines to the spray gun. An optional system structure adds a second cooling vortex cylinder to reduce the temperature of the pressurized air in a second flow line that serves to pressurize the spray pot and to pass to the spray gun parallel to the cooled liquid line.
Claims
1. A system for producing a temperature regulated fluid stream of surface coating material entrained in pressurized air onto a surface to be coated, the system comprising: a pressurized air source; a pressurized container for holding a quantity of liquid surface coating material, the pressurized container having a container wall, an inlet, and an outlet, the inlet in flow communication with the pressurized air source; at least one air flow coil in thermal contact with the container wall of the pressurized container, the at least one air flow coil having an inlet and an outlet; at least one cooling vortex cylinder having an inlet and an outlet, the inlet in flow communication with the pressurized air source, and the outlet in flow communication with the inlet of the at least one air flow coil; and a coating application spray device having an air inlet port, a fluid inlet port, and a discharge nozzle, the air inlet port in flow communication with the pressurized air source, the fluid inlet port in flow communication with the pressurized container outlet, the coating application spray device entraining a flow of fluid into a flow of presurrized air to be discharged from the discharge nozzle; wherein a flow of pressurized air through the at least one cooling vortex cylinder reduces the temperature of the air flow through the at least one air flow coil, thereby reducing the temperature of the container wall of the pressurized container, thereby reducing the temperature of a quantity of liquid surface coating material contained within the pressurized container.
2. A system for producing a temperature regulated fluid stream of surface coating material entrained in pressurized air onto a surface to be coated, the system comprising: a pressurized air source; a pressurized container for holding a quantity of liquid surface coating material, the pressurized container having a container wall, an inlet, and an outlet; at least one air flow coil in thermal contact with the container wall of the pressurized container, the at least one air flow coil having an inlet and an outlet; a first cooling vortex cylinder having an inlet and an outlet, the inlet in flow communication with the pressurized air source, and the outlet in flow communication with the inlet of the at least one air flow coil; a second cooling vortex cylinder having an inlet and an outlet, the inlet in flow communication with the pressurized air source, and the outlet in flow communication with the inlet of the pressurized container; and a coating application spray device having an air inlet port, a fluid inlet port, and a discharge nozzle, the air inlet port in flow communication with the outlet of the second cooling vortex cylinder, the fluid inlet port in flow communication with the pressurized container outlet, the coating application spray device entraining a flow of fluid into a flow of pressurized air to be discharged from the discharge nozzle; wherein a flow of pressurized air through the first cooling vortex cylinder reduces the temperature of the air flow through the at least one air flow coil, thereby reducing the temperature of the container wall of the pressurized container, thereby reducing the temperature of a quantity of liquid surface coating material contained within the pressurized container, and wherein a flow of pressurized air through the second cooling vortex cylinder reduces the temperature of the air flow to the air inlet port of the coating application spray device, thereby reducing the temperature of the pressurized air to be entrained with the fluid flow of liquid surface coating material.
3. A method for producing a temperature regulated fluid stream of surface coating material entrained in pressurized air, the fluid stream to be applied to a surface to be coated, the method comprising: providing a source of pressurized air at a first temperature; conducting a flow of pressurized air from the pressurized air source through a cooling vortex cylinder, the cooling vortex cylinder providing an outlet flow of cooled pressurized air at a second temperature; providing a pressurized container with a quantity of liquid surface coating material; conducting a flow of pressurized air into the pressurized container, the flow of pressurized air displacing and directing a portion of the quantity of liquid surface coating material out from the pressurized container; providing at least one air flow coil in thermal contact with the pressurized container; conducting the outlet flow of cooled pressurized air from the cooling vortex cylinder through the at least one air flow coil, the flow of cooled pressurized air cooling the quantity of liquid surface coating material within the pressurized container; providing a coating application spray device in flow communication with the source of pressurized air and the pressurized container; conducting a flow of a portion of the cooled quantity of liquid surface coating material out from the pressurized container to the coating application spray device; conducting a flow of pressurized air from the pressurized air source to the coating application spray device; entraining the flow of a portion of the cooled quantity of liquid surface coating material into the flow of pressurized air; and discharging the entrained flow from the coating application spray device onto the surface to be coated.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0008]
[0009]
[0010]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0011] Reference is made first to
[0012] After passing through the cooling coils the cooled air passes through an exit manifold into an insulated envelope surrounding the liquid line to the spray gun. The liquid coating material flowing from the pressurized spray pot is maintained at the lower temperature up to the point of being dispensed (with a parallel flow of pressurized air) through the spray gun.
[0013]
[0014] In this alternate embodiment shown in
[0015] Reference is next made to
[0016] In
[0017] Cooling coils 14 surround and are in thermal contact with the metal (typically) walls if pressurized spray pot 12 and are in turn surrounded by insulated enclosure base 16. The central opening 44 created by cooling coils 14 is sized to fit tightly around pressure pot 12 and to thereby maintain good thermal contact with the walls of the pressurized enclosure. Cooling coils 14 are preferably made up of a continuous conduit and have an inlet line 42 and an outlet line 46.
[0018] The central opening 50 of insulated enclosure base 16 is sized to fit snugly around cooling coils 14. Apertures or slots 52 in insulated enclosure base 16 are positioned to accommodate inlet line 42 and outlet line 46 when the components are assembled. Pressurized spray pot lid 15 is, as is typical in the art, configured to seal pressure pot 12 after the liquid coating material is positioned inside. At least two ports penetrate spray pot lid 15, a pressurized air inlet line 32 and the liquid coating outlet line 36. Other ports as may be connected to ancillary lines and other gauges may be positioned through the spray pot lid.
[0019] In the embodiment shown in
[0020] Inlet line 28 connects, by way of regulator/filter/gauge 66, to spraying compressed air inlet line 64, which in the preferred embodiment includes quick disconnect couplings on each end. Spraying air inlet line 64 carries compressed air into cooling vortex cylinder 60. Heat is absorbed from the compressed air by the action of air flow through the vortex cylinder and is removed through vortex cylinder hot air vents 62. Cooled compressed air (which has dropped slightly in pressure) passes from vortex cylinder 60 through spraying air inlet line 30.
[0021] In the above-described manner, both the compressed airflow that serves to carry the liquid coating material from the spray pot and the compressed airflow through the coils are cooled sufficiently to reduce the temperature of the effluent mixture that is sprayed from the system as a coating. The cooled compressed spray airflow through spraying air inlet line 30 flows (past gauge 24) both into the pressure pot 12 to force the liquid coating under pressure out through liquid coating outlet line 36, and direct through spraying air outlet line 34 where the flow streams are eventually mixed at the spray nozzle (not shown in
[0022] As mentioned above, insulated enclosure lid 18 may be a separate component or an element integrated into the construction of pressure pot lid 15. If a separate component, insulated enclosure lid 18 preferably includes apertures or slots 54 to accommodate spraying air inlet line 30, gauge 24, spraying air outlet line 34, and liquid coating outlet line 36. The various flow lines described above may preferably be steel (such as with spray pot connecting line 32) or may be rubber compressed air hose lines as would typically be used in the various connections that require rigidity or flexibility, as the case may be. Other placements of gauges, filters, and regulators are also anticipated according to the requirements of specific coatings and specific operating environments.
[0023] Those skilled in the art will recognize that although the preferred embodiments of the present invention described are generally presented with the basic components associated with the cooling process, various additional valves and internal flow nozzles may be used to increase or decrease the pressure of the air in the pneumatic lines so as to control the cooling (or in some cases the warming) of the system. Likewise, those skilled in the art will recognize various structures and insulative materials that surround the pressure pot and the air and fluid flow lines. Connectors, seals, and valves may preferably be structured to allow for normal access to the pressure pot for the purpose of filling or re-filling the system with the coating material being used. Various types of vortex cooling cylinders are available on the market that will meet the requirements of the system of the present invention. Appropriate flow regulators and filters are positioned as shown in each diagram to increase or decrease the pressure in the input air flow lines as required by the system. Because the vortex cooling cylinders generally operate by allowing a flow of pressurized air to expand (thereby reducing the pressure) the initial pressures into the system will be higher to accommodate the drop and maintain the same output pressures required at the spray gun.
[0024] While the various embodiments of the present invention have been described in connection with a number of generalized components, those skilled in the art will anticipate specific components with specific operational ranges to optimize the functionality of the system for various types of coatings and fluids. Systems with such selected characteristics still fall within the spirit and scope of the present invention.