The present specification generally relates to modularly integrated coating systems for coating a plurality of parts and, more specifically, for adaptively providing a coating system for coating a plurality of parts.
A variety of different coating systems containing various selectable features can be used to coat a plurality of parts through processes such as electrocoating or powder coating. As would be familiar to one skilled in the art, the parts may comprise various materials, for example, metal parts utilized in various industries e.g., the automotive industry. In such processes, the plurality of parts must at least be prepared, rinsed, coated and cured while being transported through the coating system by a part conveyor. However, such coating systems are often custom designed and/or built for a specific location and may provide little to no flexibility or re-deployability. Additionally, it may become difficult to selectively include various adaptable features when such coating systems are custom built for each unique location.
Accordingly, a need exists for alternative modular coating systems for coating a plurality of parts.
In one embodiment, a modularly integrated coating system for coating a plurality of parts is provided. The modularly integrated coating system includes a part handling system that transports parts between one or more modular ovens configured to modularly connect to one another to form a single curing station of selectable size for curing the plurality of parts, wherein the one or more modular ovens comprise a gas burner and a circulating fan, and one or more modular support equipment platforms configured to stackably support the one or more modular ovens in the modularly integrated coating system. The one or more modular support equipment platforms can include a water treatment system configured to treat water utilized for coating the plurality of parts in the modularly integrated coating system, a water heat generation system configured to provide heated water utilized in coating the parts, an integrated lab kit module configured to provide testing capabilities at one or more points along the modularly integrated coating system, and an integrated process control system configured to monitor and control the coating of the plurality of parts as they progress through the modularly integrated coating system. The part handling system can further transport parts to a part coating system that is operationally integrated with the one or more modular ovens and the one or more modular support equipment platforms, wherein the part coating system coats the plurality of parts.
These and additional features provided by the embodiments described herein will be more fully understood in view of the following detailed description, in conjunction with the drawings.
The following detailed description of specific embodiments of the present invention can be best understood when read in conjunction with the following drawings, where like structure is indicated with like reference numerals and in which:
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Each modular oven 100 can stackably rest on top of a modular support equipment platform 200 and be secured via bolts, screws, brackets or the like. Furthermore, the modularly integrated coating system 10 can utilize any number of modular ovens 100 to create the necessary size and length needed for coating (e.g., curing) a plurality of parts. For example, in one embodiment, such as that illustrated in
In another embodiment, such as that illustrated in
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In some embodiments, the modularly integrated coating system 10 may also comprise a pretreatment system (such as initial possible rinse station 301 and/or part preparation station 302). The pretreatment system may be operable to clean, seal, and rinse the part before the coating system operation is commenced. It is also contemplated that the pretreatment system may include devices and units suitable to provide such pretreatment. The pretreatment system may be integrated into the overall coating system to provide a seamless transition.
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When present, an anolyte system may comprise membrane electrode cells, anode distribution panels, anolyte tanks, circulating pumps, automatic conductivity controls, and/or a supply of purified water. The anolyte system may thereby provide a device having a ratio of effective electrode area to coated surface area as required by the particular application. The anolyte system may also comprise an anode distribution panel, anolyte tank, and recirculation system. The volume of the anolyte tank may be a minimum of two times the pump capacity, and at least the volume of the combined anolyte cells. However, other tank capacities are also contemplated. The anolyte tank may also comprise a conductivity meter that actuates a solenoid valve that allows the de-ionized water to enter the tank whenever the conductivity exceeds the set point.
The optional filtration system may comprise bag filters, ultra-filter casings, a pump, and a filter cleaning system. The bag filters may be located in line ahead of the ultra-filters to remove particular contamination and to protect the ultra-filters. The filtration system may individually isolate a particular filter to allow the rest of the system to run, while the particular filter may be cleaned. In one embodiment, the paint velocity through the piping system should be a minimum of at least 2.1 meters per second, and a maximum of 4.2 m/s. However, other filtration systems are also contemplated for use, suitable to eliminate a certain threshold of contaminants from the integrated coating system.
In some embodiments, the modularly integrated coating system 10 may comprise an integrated water heat generation system. In some embodiments, the water heat generation system may comprise a hot water or steam boiler 220 as illustrated in
The modularly integrated coating system 10 may additionally comprise a waste water treatment system 320 integrated within the system. The waste water system may additionally comprise a range of treatment technologies, included but not limited to, metal removal system, ion exchange, or metal hydroxide precipitation. Additionally or alternatively, the modularly integrated coating system 10 may comprise a purified water system integrated within the system. The purified water system may produce a de-ionized water or purified water through various systems appreciated by one of ordinary skill. For example, the water purification system may comprise a revere osmosis system, or other water purification system.
The modularly integrated coating system 10 may comprise a water recycling and recovery system. The water recycling and recovery system may be operable to minimize or eliminate all liquid waste products. The water recycling and recovery system may be operable to recycle and remove all contaminants from the internal process water. The contaminants may be removed as solids, thus meeting the best available technology requirement of Europe. The water recovery and recycle system may comprise a water storage capability with the recycling option which minimizes the use of water for regions where water is scarce and/or expensive.
In some embodiments, an integrated process control system (e.g., an integrated lab kit module 330 and/or a process control system 340 as will become appreciated herein) may be provided in conjunction with the modularly integrated coating system 10. The integrated process control system may be integrated any plurality of locations about the modularly integrated coating system, or locations proximate thereto, to allow for the capturing, monitoring and/or adjustment of various data from the modularly integrated coating system 10, laboratory data, control data and other non-coating parameters. The integrated process control system may therefore control and monitor a plurality of process variables, including but not limited to, pH, conductivity, fluoride, ORP, temperature, flow, pressure, motor speed, line barcodes, lab barcodes, delta scope, direct input, lab test data, quality data, spc set up, tank parameters, cycle times, and fault response. It is contemplated that the integrated process control system may control monitor over 40 different process attributes.
The integrated process control system may produce a variety of outputs in terms of controllers; displays; handheld devices; alarms; and interface panels. For controllers, the outputs may comprise metering pumps, valves, switches, motors, and burners. For displays, the outputs may include process status, 3D equipment detail status, equipment operating parameters, process reports, and charts. For handheld outputs, the list may comprise process status, equipment warnings, notifications, instructions, and visual alarms. For alarms, the outputs may comprise warnings, notifications, instructions, and alarms. For the interface panel, outputs may comprise process status, 3D equipment detail status, equipment operating parameters, process reports, and charts. The integrated process control system be integrated with a globalized data management system.
In some embodiments, the modularly integrated coating system can optionally comprise an integrated lab kit module to provide testing capabilities (e.g., check part coating quality such as coverage, thickness, dryness, measure chemical values such as pH values, or test for any other testable property that can be used to monitor the part coating process) at one or more points along the modularly integrated coating system. In such embodiments, the integrated lab kit may be attached, connected to or otherwise integrated with the modularly integrated coating system to allow for the measurements of various parameters relating to the part coating process (temperatures, pH levels, concentrations, quality control parameters, etc.).
In some embodiments, the control system may be responsive to the integrated lab kit module. Specifically, if the lab kit module detects coating defects in the modularly integrated coating system, the lab kit may notify the user via a display unit or output of the control unit. Based on this output, the user may adjust one or more system parameters of the coating system via utilization of the control unit in order to correct the defect. Alternatively, the control unit may automatically adjust system parameters to correct the defect.
In some embodiments, the modularly integrated coating system 10 can provide a demand-rate optimized process to match the coating requirements and needs of the employing target facility. The modularly integrated coating system 10 may be configured to coat a variety of part sizes, and thus sized and dimensioned to accommodate the part size to be coated. The modularly integrated coating system may be operable to coat using a variety of coating technologies, including, but not limited to, electro-coating, powder coating, plating, or Aquence.
The modularly integrated coating system 10 disclosed herein may provide a coating system operable to provide corrosion protection for both ferrous and non-ferrous components, including but not limited to, stampings, castings, manufactured assemblies, and commercial components. It is also contemplated that the modularly integrated coating system 10 may provide coating functionality in conjunction with a variety of other components.
For example, in some embodiments, the modularly integrated coating system 10 may comprise a switch that allows a user to select the desired coating process, for example, electrocoating, powder coating, plating, Aquence, or, where possible, a combination thereof. In one embodiment, the modularly integrated coating system 10 may allow a user to utilize a variety of coating technologies, while utilizing a single pretreatment system and curing oven.
The modularly integrated coating system 10 may additionally be configured to be compatible with a variety of energy sources including, but not limited to, liquid propane and compressed natural gas.
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As the parts progress between the different stages, the water heat generation system 310 can provide heated water when and where required, such as to the plurality of possible rinse stations 301, 303 and 305 as illustrated. As discussed above, the water heat generation system 310 can be a conventional stand alone water heat generation system, can be a boiler integrated with the modularly integrated coating system (such that it is predisposed on or about a modular support equipment platform 200), or can be integrated with a modular oven 100. The water heat generation system 310 can receive water from outside sources (such as public utility water or externally purified water) or internal recycling (such as recycled water from the water treatment system 320 as illustrated).
Moreover, the waste water (i.e., the water left over from the various processes such as the rinse stations) can be filtered and/or treated in the water treatment system 320 for recycling back to the water heat generation system 310 as illustrated. In some embodiments, water leaving the water treatment system 320 may additionally or alternatively be sent directly to the process stage where it is needed (bypassing the water heat generation system 310) or may be discarded external the modularly integrated coating system.
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In addition to being connected at one or more locations, the integrated lab kit module 330 and the process control system 340 may be able to communicate with one another so that the process control system 340 can automatically or manually control one or more parts of the modularly integrated coating system based on information received from the integrated lab kit module 330 as stated above. Likewise, in such embodiments, the integrated lab kit module 330 may specifically collect, test and/or analyze one or more parameters based on the actions or instructions from the process control system 340.
It should now be appreciated that modularly integrated coating systems may comprise a variety of user-selected options in a modular format to allow for the relatively quick and adaptable installation of preferred systems. Furthermore, modularly integrated coating systems can be easily transported, installed, modified and packed to provide low-cost individually selected coating machines.
It is noted that the terms “substantially” and “about” may be utilized herein to represent the inherent degree of uncertainty that may be attributed to any quantitative comparison, value, measurement, or other representation. These terms are also utilized herein to represent the degree by which a quantitative representation may vary from a stated reference without resulting in a change in the basic function of the subject matter at issue.
While particular embodiments have been illustrated and described herein, it should be understood that various other changes and modifications may be made without departing from the spirit and scope of the claimed subject matter. Moreover, although various aspects of the claimed subject matter have been described herein, such aspects need not be utilized in combination. It is therefore intended that the appended claims cover all such changes and modifications that are within the scope of the claimed subject matter.
This application claims priority to U.S. Provisional Application Ser. No. 61/327,166 filed Apr. 23, 2010, which is incorporated by reference herein in its entirety.
Number | Date | Country | |
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61327166 | Apr 2010 | US |