US20090104343A1 - Systems and methods for applying a liquid coating material to a substrate - Google Patents
Systems and methods for applying a liquid coating material to a substrate Download PDFInfo
- Publication number
- US20090104343A1 US20090104343A1 US12/299,380 US29938007A US2009104343A1 US 20090104343 A1 US20090104343 A1 US 20090104343A1 US 29938007 A US29938007 A US 29938007A US 2009104343 A1 US2009104343 A1 US 2009104343A1
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- US
- United States
- Prior art keywords
- coating material
- liquid coating
- substrate
- dispensed volume
- applicator
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Classifications
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- H—ELECTRICITY
- H05—ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
- H05K—PRINTED CIRCUITS; CASINGS OR CONSTRUCTIONAL DETAILS OF ELECTRIC APPARATUS; MANUFACTURE OF ASSEMBLAGES OF ELECTRICAL COMPONENTS
- H05K3/00—Apparatus or processes for manufacturing printed circuits
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B05—SPRAYING OR ATOMISING IN GENERAL; APPLYING FLUENT MATERIALS TO SURFACES, IN GENERAL
- B05B—SPRAYING APPARATUS; ATOMISING APPARATUS; NOZZLES
- B05B12/00—Arrangements for controlling delivery; Arrangements for controlling the spray area
- B05B12/08—Arrangements for controlling delivery; Arrangements for controlling the spray area responsive to condition of liquid or other fluent material to be discharged, of ambient medium or of target ; responsive to condition of spray devices or of supply means, e.g. pipes, pumps or their drive means
- B05B12/085—Arrangements for controlling delivery; Arrangements for controlling the spray area responsive to condition of liquid or other fluent material to be discharged, of ambient medium or of target ; responsive to condition of spray devices or of supply means, e.g. pipes, pumps or their drive means responsive to flow or pressure of liquid or other fluent material to be discharged
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- G—PHYSICS
- G03—PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
- G03F—PHOTOMECHANICAL PRODUCTION OF TEXTURED OR PATTERNED SURFACES, e.g. FOR PRINTING, FOR PROCESSING OF SEMICONDUCTOR DEVICES; MATERIALS THEREFOR; ORIGINALS THEREFOR; APPARATUS SPECIALLY ADAPTED THEREFOR
- G03F7/00—Photomechanical, e.g. photolithographic, production of textured or patterned surfaces, e.g. printing surfaces; Materials therefor, e.g. comprising photoresists; Apparatus specially adapted therefor
- G03F7/16—Coating processes; Apparatus therefor
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01L—SEMICONDUCTOR DEVICES NOT COVERED BY CLASS H10
- H01L21/00—Processes or apparatus adapted for the manufacture or treatment of semiconductor or solid state devices or of parts thereof
- H01L21/67—Apparatus specially adapted for handling semiconductor or electric solid state devices during manufacture or treatment thereof; Apparatus specially adapted for handling wafers during manufacture or treatment of semiconductor or electric solid state devices or components ; Apparatus not specifically provided for elsewhere
- H01L21/67005—Apparatus not specifically provided for elsewhere
- H01L21/67011—Apparatus for manufacture or treatment
- H01L21/6715—Apparatus for applying a liquid, a resin, an ink or the like
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- H—ELECTRICITY
- H05—ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
- H05K—PRINTED CIRCUITS; CASINGS OR CONSTRUCTIONAL DETAILS OF ELECTRIC APPARATUS; MANUFACTURE OF ASSEMBLAGES OF ELECTRICAL COMPONENTS
- H05K3/00—Apparatus or processes for manufacturing printed circuits
- H05K3/0091—Apparatus for coating printed circuits using liquid non-metallic coating compositions
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B05—SPRAYING OR ATOMISING IN GENERAL; APPLYING FLUENT MATERIALS TO SURFACES, IN GENERAL
- B05B—SPRAYING APPARATUS; ATOMISING APPARATUS; NOZZLES
- B05B12/00—Arrangements for controlling delivery; Arrangements for controlling the spray area
- B05B12/08—Arrangements for controlling delivery; Arrangements for controlling the spray area responsive to condition of liquid or other fluent material to be discharged, of ambient medium or of target ; responsive to condition of spray devices or of supply means, e.g. pipes, pumps or their drive means
- B05B12/10—Arrangements for controlling delivery; Arrangements for controlling the spray area responsive to condition of liquid or other fluent material to be discharged, of ambient medium or of target ; responsive to condition of spray devices or of supply means, e.g. pipes, pumps or their drive means responsive to temperature or viscosity of liquid or other fluent material discharged
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B05—SPRAYING OR ATOMISING IN GENERAL; APPLYING FLUENT MATERIALS TO SURFACES, IN GENERAL
- B05B—SPRAYING APPARATUS; ATOMISING APPARATUS; NOZZLES
- B05B13/00—Machines or plants for applying liquids or other fluent materials to surfaces of objects or other work by spraying, not covered by groups B05B1/00 - B05B11/00
- B05B13/02—Means for supporting work; Arrangement or mounting of spray heads; Adaptation or arrangement of means for feeding work
- B05B13/04—Means for supporting work; Arrangement or mounting of spray heads; Adaptation or arrangement of means for feeding work the spray heads being moved during spraying operation
- B05B13/0431—Means for supporting work; Arrangement or mounting of spray heads; Adaptation or arrangement of means for feeding work the spray heads being moved during spraying operation with spray heads moved by robots or articulated arms, e.g. for applying liquid or other fluent material to 3D-surfaces
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B05—SPRAYING OR ATOMISING IN GENERAL; APPLYING FLUENT MATERIALS TO SURFACES, IN GENERAL
- B05B—SPRAYING APPARATUS; ATOMISING APPARATUS; NOZZLES
- B05B7/00—Spraying apparatus for discharge of liquids or other fluent materials from two or more sources, e.g. of liquid and air, of powder and gas
- B05B7/24—Spraying apparatus for discharge of liquids or other fluent materials from two or more sources, e.g. of liquid and air, of powder and gas with means, e.g. a container, for supplying liquid or other fluent material to a discharge device
- B05B7/2489—Spraying apparatus for discharge of liquids or other fluent materials from two or more sources, e.g. of liquid and air, of powder and gas with means, e.g. a container, for supplying liquid or other fluent material to a discharge device an atomising fluid, e.g. a gas, being supplied to the discharge device
- B05B7/2494—Spraying apparatus for discharge of liquids or other fluent materials from two or more sources, e.g. of liquid and air, of powder and gas with means, e.g. a container, for supplying liquid or other fluent material to a discharge device an atomising fluid, e.g. a gas, being supplied to the discharge device a liquid being supplied from a pressurized or compressible container to the discharge device
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- H—ELECTRICITY
- H05—ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
- H05K—PRINTED CIRCUITS; CASINGS OR CONSTRUCTIONAL DETAILS OF ELECTRIC APPARATUS; MANUFACTURE OF ASSEMBLAGES OF ELECTRICAL COMPONENTS
- H05K2203/00—Indexing scheme relating to apparatus or processes for manufacturing printed circuits covered by H05K3/00
- H05K2203/01—Tools for processing; Objects used during processing
- H05K2203/0104—Tools for processing; Objects used during processing for patterning or coating
- H05K2203/0126—Dispenser, e.g. for solder paste, for supplying conductive paste for screen printing or for filling holes
Definitions
- the present invention relates generally to dispensing liquid coating materials and, more particularly, to a system and method for applying liquid coating material, such as a conformal coating material, to a substrate, such as a circuit board.
- liquid coating material such as a conformal coating material
- the volume of coating material dispensed onto the substrate may be controlled so that substantially the same amount of coating material is dispensed onto successive substrates during production.
- a flow meter is supplied in the line coupling the fluid supply with the dispensing valve.
- the volume of material dispensed is read using the encoder counts of the flow meter.
- the time interval during which the measured volume of material was dispensed is also determined and a volumetric flow rate is calculated. This calculated flow rate is compared to a set point representing a desired flow rate and, if necessary, a correction is made to adjust the actual flow rate towards the desired flow rate.
- Either the time interval, the number of encoder counts, or both, may be characterized by significant inaccuracies, which will result in an inaccurate calculation of flow rate.
- the system compares the inaccurate calculated flow rate to the set point to produce an “error.”f Because of the inaccuracy, the error from the comparison may result in a correction of the wrong magnitude or even a correction in the wrong direction. Either result may cause an improper amount of coating material to be dispensed the next time the dispensing valve is opened. The result could easily be that the system produces so much inaccuracy it is of little practical value to the user.
- a system for applying a liquid coating material to a substrate, such as a circuit board, as determined by a coating program.
- the system may comprise an applicator configured to receive the liquid coating material from a reservoir and configured to dispense the liquid coating material onto the substrate.
- a regulator is configured to regulate a flow of the liquid coating material to the applicator.
- a meter is configured to generate volume signals representing the volumes of liquid coating material flowing to the applicator,
- the system includes a robot configured to move the applicator relative to the substrate and a control system configured to access the coating program.
- the control system is configured to control the robot and the applicator to apply the liquid coating material to the substrate in accordance with information in the coating program.
- control system is configured to utilize one or more volume signals from the meter to determine a dispensed volume of the liquid coating material applied to the substrate during the coating program.
- the control system is further configured to compare the dispensed volume to a desired dispensed volume of the liquid coating material for the coating program and to produce an error signal representing the difference between the dispensed volume and the desired dispensed volume.
- the control system is configured to reduce the difference between the dispensed volume of the liquid coating material on a subsequent substrate and the desired dispensed volume based on the error signal.
- a method for applying liquid coating material to a substrate as determined by a coating program.
- the method comprises dispensing the liquid coating material from an applicator to the substrate as directed by the coating program, determining a dispensed volume of the liquid coating material applied to the substrate after the coating program concludes, comparing the dispensed volume to a desired dispensed volume of the liquid coating material for the coating program, and producing an error signal representing the difference between the dispensed volume and the desired dispensed volume.
- the method further includes changing the dispensed volume of the liquid coating material applied to a subsequent substrate based upon the error signal.
- FIGURE is a schematic view of a computer-controlled coating system in accordance with an embodiment of the invention.
- a coating system 10 may be used to apply a liquid coating material, such as a conformal coating material, to a series of substrates, such as the representative substrate 12 .
- a liquid coating material such as a conformal coating material
- the coating system 10 may be, for example, a Model SC-105, SC-205, or SC-400 conformal coating applicator commercially available from Asymtek (Carlsbad, Calif.).
- the coating system 10 includes a multi-axis electro-mechanical positioner or robot 14 and a conformal coating applicator 16 coupled with the robot 14 .
- the applicator 16 may be suspended from the robot 14 above the substrates 12 .
- the robot 14 is adapted to move the applicator 16 in directions defined within an X-Y-Z Cartesian coordinate frame to supply three degrees of freedom.
- the robot 14 includes a drive coupled to independently controllable motors (not shown) in a known manner.
- the applicator 16 is manipulated by robot 14 relative to the substrate 12 for applying amounts of liquid coating material to selected areas of the substrate 12 .
- a programmable controller 18 coordinates the movements and actuations of the coating system 10 .
- the controller 18 may be a programmable logic controller (PLC), a microprocessor based controller, personal computer, or another conventional control device capable of carrying out the functions described herein as understood by a person having ordinary skill in the art.
- a human machine interface (HMI) device 19 is operatively connected to the controller 18 in a known manner.
- the HMI device 19 may include input devices and controls, such as a keypad, pushbuttons, control knobs, a touch screen, etc., and output devices, such as displays and other visual indicators, that are used by an operator to control the operation of the controller 18 and, thereby, control the operation of the coating system 10 .
- Substrates 12 for example, printed circuit boards with attached semiconductor die and other components, are supported in an operative relationship with the applicator 16 in a known manner and liquid coating material is applied from the applicator 16 onto selected areas on each substrate 12 .
- a series of substrates 12 as may be coated in a batch mode.
- the substrates 12 may be continuously transported past the applicator 16 on an automatic conveyor 20 .
- the conveyor 20 has a conventional design and, furthermore, may have a width that can be adjusted to accommodate substrates 12 of different dimensions.
- the conveyor 20 which may also include pneumatically operated lift and lock mechanisms (not shown), receives command signals from a conveyor controller 22 .
- the applicator 16 is electrically coupled with an applicator controller 24 , which supplies command signals that control the operation of the applicator 16 .
- a motion controller 26 is electrically coupled by a communication link 21 with the robot 14 .
- the solenoid 34 is electrically coupled by a communication link 23 with the motion controller 26 .
- the conveyor controller 22 and motion controller 26 are also electrically coupled with controller 18 over respective communication links 25 , 27 .
- the motion controller 26 is electrically coupled over a communication link 29 with the conveyor controller 22 .
- a programmable control system for coating system 10 includes the controller 18 , the applicator controller 24 , the motion controller 26 , and the optional conveyor controller 22 as interconnected components that communicate with each other.
- the motion controller 26 supplies command signals to the robot 14 over the communication link 21 .
- the command signals are used by the robot 14 to control the position and/or velocity of the applicator 16 .
- the robot 14 includes electric motors, such as servo motors or stepper motors, that drive the motion of the different axes of the robot 14 .
- Applicator 16 includes a body 30 suspended from the robot 14 , a nozzle 31 mounted to one end of the body 30 , and a flow control mechanism (not shown) disposed inside the body 30 .
- the flow control mechanism inside body 30 may comprise an air-actuated needle, an air piston, and a valve seat that cooperate to form a dispensing valve (not shown) operative to control a flow of conformal coating material dispensed from the applicator 16 .
- a pressurized fluid supply 32 and a solenoid 34 cooperate to supply pressurized fluid in a known manner to regulate the actuation of the dispensing valve inside the body 30 .
- the solenoid 34 controls air pressure in a conduit 33 connecting the pressurized fluid supply 32 with the applicator 16 so as to move the air piston and, thereby, move the needle relative to the valve seat to provide an opened position for the dispensing valve in which liquid coating material is dispensed from the applicator 16 onto the substrate 12 .
- the solenoid 34 may vent the air pressure acting on the air piston to permit the needle to return to a closed position in which the needle contacts the valve seat to discontinue the dispensing.
- the coating system 10 includes a pressurized liquid supply 38 that operates in a known manner under the command of controller 18 to generate a continuous stream or supply of the pressurized liquid coating material.
- the pressurized liquid supply 38 may include a diaphragm or piston pump that siphons amounts of liquid coating material from a reservoir and then pumps the stream of liquid coating material under pressure from the reservoir through a fluid path to the applicator 16 .
- the pressurized liquid supply 38 is electrically connected by a communication link 39 with the controller 18 , which can regulate operating parameters such as the temperature and pressure of a liquid coating material by communicating appropriate control signals to the pressurized liquid supply 38 over communication link 39 .
- the pressurized liquid supply 38 is optionally configured with one or more conventional heating elements 38 a that are electrically coupled with a conventional temperature controller 60 that is electrically coupled with the controller 18 .
- conventional heating elements such as heater elements 38 a, and temperature controllers, such as temperature controller 60 , are understood by a person having ordinary skill in the art.
- the applicator 16 may include heating element (not shown) or a heating element (not shown) may be disposed in the one of the conduits 51 , 53 , 55 . Regardless of the specific location of the heating element in the flow path between the pressurized liquid supply 38 and the nozzle 31 , the liquid coating material may be heated in this flow path before being applied to the substrate 12 .
- the applicator 16 includes a liquid inlet 36 that is coupled in fluid communication with a pressurized liquid supply 38 .
- the liquid coating material is supplied from the pressurized liquid supply 38 to the applicator 16 through the liquid inlet 36 for regulated dispensing out of a dispensing orifice (not shown) in the nozzle 31 .
- the body 30 has a fluid inlet 40 coupled with pressurized fluid supply 32 and internal passageways (not shown) that direct the pressurized fluid to outlets in the vicinity of the dispensing orifice in nozzle 31 , where the pressurized fluid is discharged to interact with and manipulate the stream 42 of liquid coating material that is sprayed from the applicator 16 .
- a fluid regulator 43 which communicates over communication link 45 with motion controller 26 , controls the flow of pressurized fluid from the pressurized fluid supply 32 to the fluid inlet 40 .
- a representative applicator similar to applicator 16 is described in U.S. Pat. No. 7,028,867, the disclosure of which is hereby incorporated by reference herein in its entirety.
- the system 10 is operated as instructed by a library of operational cycles or sequences that are stored in a memory 44 associated with the controller 18 and/or stored in other computers.
- the operational sequences are recalled and placed in a particular operational program, as desired, executing on the controller 18 .
- the operational sequences can be adjusted to accommodate different environmental conditions, different types of substrates 12 , or different types of conformal coating material.
- the controller 18 can transfer an entire operational program as electrical signals over communication link 25 to the motion controller 26 for execution at the motion controller 26 .
- the controller 18 can transfer one or more instructions as electrical signals over communication link 25 in a batch of instructions and data to the motion controller 26 for subsequent execution.
- the operator may enter parameters, such as the type of substrate 12 , the type of liquid coating material, the liquid pressure, the assist air pressure, the velocity of the applicator 16 , the distance between the substrate 12 and applicator 16 , etc., at the HMI device 19 .
- the entered parameters are stored in the memory 44 of controller 18 for future use in an operational sequence.
- Each substrate 12 is matched by the controller 18 with a coating program that determines which specific components and areas of the substrate 12 are to be coated with liquid coating material.
- the liquid coating material is applied to only selected areas and/or components on the substrate 12 .
- an “air over fluid” (A/F) regulator 50 and a flow meter 52 are situated in the flow path for the liquid coating material from the pressurized liquid supply 38 to the liquid inlet 36 of the applicator 16 .
- a liquid input of the A/F regulator 50 is coupled by a conduit 51 with a liquid outlet of the pressurized liquid supply 38 .
- the A/P regulator 50 has a liquid outlet coupled by a conduit 53 with a liquid input of the flow meter 52 , which in turn has a liquid outlet coupled by a conduit 55 with the liquid inlet 36 of the applicator 16 .
- the A/F regulator 50 controls the fluid pressure of the pressurized liquid material in transit in the fluid path to the applicator 16 .
- the controller 18 is electrically coupled by a communication link 57 with a) regulator 54 .
- the regulator 54 may be a “voltage over pressure” (E/P) regulator that receives a control voltage from the motion controller 26 and includes a transducer that converts the control voltage to a fluid pressure.
- the regulator 54 may receive a control current or a serial communications signal, instead of a control voltage, for conversion to a fluid pressure.
- the regulator 54 delivers pressurized fluid to the A/F regulator 50 for use in controlling the fluid pressure of the liquid coating material flowing through the A/F regulator 50 .
- the A/F regulator 50 is positioned in a conduit 35 defining a fluid path between the pressurized liquid supply 38 and the flow meter 52 .
- the flow meter 52 may be positioned in the fluid path between the pressurized liquid supply 38 and the A/F regulator 50 so that the flow meter 52 is upstream from the A/F regulator 50 . With this alternative arrangement, the flow meter 52 would alter the pressure of the liquid coating material after the liquid coating material has flowed through the A/F regulator 50 .
- the controller 18 is electrically coupled by a communication link 59 with the flow meter 52 .
- the flow meter 52 In response to the flow of liquid coating material from conduit 53 to conduit 55 , the flow meter 52 generates a string of counts or electrical pulses each representing a fixed volume of liquid coating material flowing through or past the flow meter 52 .
- the string of electrical pulses from the flow meter 52 may be communicated from the flow meter to the motion controller 26 and then relayed from the motion controller 26 to the controller 18 .
- the flow meter 52 may comprise a gear meter that rotates in response to flow through the gear meter and, for a fixed amount of rotation representing a known volume, generates an electrical pulse with an encoder that is transmitted as an electrical signal in a signal stream to the controller 18 .
- the gear meter may generate a pulse for every 0.04 cubic centimeters of liquid coating material flowing through the flow meter 52 .
- the controller 18 obtains a coating program for the substrate 12 when substrate 12 is properly positioned relative to the applicator 16 .
- the coating program determines which components and/or areas of the substrate 12 are to be coated with liquid coating material, which is usually applied in strips. For example, possibly twenty-five separate components or areas of a substrate 12 may be coated with strips of the liquid coating material.
- the controller 18 retrieves an operational sequence from the memory 44 of controller 18 and, in turn, communicates control signals to the motion controller 26 over communication link 25 representing the operational sequence.
- the motion controller 26 sends command signals to the robot 14 over communication link 21 that instruct the robot 14 to move the applicator 16 at specified velocities to desired locations with respect to the substrate 12 .
- the motion controller 26 controls the movements of the robot 14 to move the applicator 16 in a plane (e.g., X and Y directions) across the substrate 12 , opening and closing the dispensing valve in the applicator 16 as necessary during this movement to apply the liquid coating material to the desired components and areas of the substrate 12 .
- a plane e.g., X and Y directions
- the motion controller 26 also provides a command signal to the solenoid 34 to cause it to change state to open the dispensing valve causing discharge of liquid coating material from nozzle 31 .
- the motion controller 26 provides command signals to the robot 14 to initiate motion of applicator 16 relative to the substrate 12 .
- the stream 42 of liquid coating material may be optionally manipulated by an assist fluid, such as air, that affects the shaping of the stream 42 discharged from the applicator 16 .
- the motion controller 26 After a predetermined time lapses, the motion controller 26 subsequently changes the state of the valve command signal to return the solenoid 34 back to its original state.
- the motion controller 26 may cause the dispensing valve of the applicator 16 to open and close the dispensing valve multiple times (e.g., twenty-five times) during the extent of the coating program so that multiple components and areas of the substrate 12 receive an amount of liquid coating material.
- the controller 18 provides electrical signals to the motion controller 26 , which prompt the motion controller 26 to provide command signals to the regulator 54 .
- the regulator 54 controls an air pressure supplied to the A/F regulator 50 to selecting a liquid pressure for the pressurized liquid coating material flowing from the pressurized liquid supply 38 to the applicator 16 .
- the selected value of liquid pressure which is dispensing application dependent, may further depend on the desired flow rate of the liquid coating material.
- the flow rate for the liquid coating material is influenced, among other factors, by the liquid pressure, the diameter of the discharge orifice in the dispensing nozzle 31 , the material viscosity, etc.
- Coating system 10 is significantly more accurate than conventional conformal coating systems because system 10 determines the volume of coating material dispensed over an entire substrate 12 , which can be calculated relatively accurately, compares that calculated value to a set point, and makes a correction, if needed, based on this relatively accurate calculation.
- the controller 18 obtains an “encoder count” from the flow meter 52 . For example, the controller 18 may consider the initial encoder count to be zero.
- the controller 18 receives the string of pulses from the flow meter 52 and incrementally accumulates a total number of pulses as the liquid coating material flows to the applicator 16 .
- the pulse string from the flow meter 52 ends.
- the controller 18 includes an accumulator that contains the total number of pulses communicated from the flow meter 52 during the coating program.
- the controller 18 Based upon a known calibration of the amount of liquid coating material represented by each pulse generated by the flow meter 52 , the controller 18 converts the total number of pulses to a total volume of liquid coating material dispensed onto the substrate 12 , The controller 18 compares the total dispensed volume with a desired total dispensed volume and produces an error signal representing the difference between the calculated and desired dispensed volumes. As necessary and based upon the error signal, the controller 18 communicates a control signal to the motion controller 26 , which supplies a control current, a control potential, or a control signal to the regulator 54 to manipulate the flow constriction represented by the A/F regulator 50 in order to compensate for the difference between the calculated and desired dispensed volumes of liquid coating material. Generally, the fluid pressure is set in proportion to the input current, potential, or control signal to the regulator 54 .
- the control signal communicated from the controller 18 to the motion controller 26 causes the motion controller 26 to react by increasing the control potential applied to the E/P transducer 54 . This action opens the A/F regulator 50 wider to increase the flow of liquid coating material to the applicator 16 . If the total dispensed volume is too high, the control signal communicated from the controller 18 to the motion controller 26 causes the motion controller 26 to react by decreasing the control potential applied to the E/P transducer 54 . This action causes the EP transducer 54 to react by closing the A/F regulator 50 to reduce the flow of liquid coating material to the applicator 16 .
- the correction is in a direction that is predicted to reduce the error signal.
- the discrepancy between the total dispensed volume and desired total dispensed volume for subsequent substrates 12 should be reduced. If the error signal is not adequately compensated, additional corrections can be made as the calculated total dispensed volume is compared with the desired total dispensed volume.
- Each substrate 12 that is processed according to the coating program typically receives an identical total dispensed volume of liquid coating material on the areas and components.
- the correction to the flow of liquid coating material under the closed loop control may be implemented by use of control windows in the software code executing on the controller 18 .
- the inner control window represents the maximum permissible deviation from the desired total volume, either above or below the desired total volume, that if exceeded will initiate a responsive action by the controller 18 .
- the outer control window represents the maximum permissible deviation from the desired total volume, either above or below the desired total volume, that if exceeded will initiate a response by the controller 18 that causes a drastic reaction, such as stopping the system 10 and/or sounding an alarm.
- the controller 18 makes no correction within this inner control window. If the calculated total volume dispensed during the control program is more than a second percentage (e.g., ⁇ 10%) of the desired total dispensed volume, the controller 18 may stop the system 10 and/or sound an alarm outside of this outer control window as determined by the user's preference.
- the substrate 12 being coated when the coating operation deviates outside of the outer control window is flagged as having an out of tolerance conformal coating applied to it.
- the controller 18 may correct the flow of liquid coating material to the applicator 16 within this intermediate control window without sounding an alarm.
- the correction which is executed as described above, is of a magnitude and sense to counteract the out of tolerance condition. For example, the corrective action may be taken if the total dispensed volume is greater ⁇ 5% of the desired total dispensed volume.
- any trends affecting total dispensed volume during a coating program are detected contemporaneously with their occurrence and responsive corrections are made as automatic intervention to offset the trend.
- the responsive corrections are implemented without operator intervention.
- a change in the viscosity of the liquid coating material may cause the total dispensed volume to shift away from the desired total dispensed volume.
- the viscosity change is detected as a change in the total dispensed volume and, subsequently, is corrected by an action executed by the controller 18 .
- System 10 assists the customer in maintaining a high quality liquid material coating operation by utilizing a relatively accurate dispensed volume calculation compared to conventional systems, while ensuring that the customer does not waste liquid coating material by applying more material than is necessary.
- the controller 18 of the system 10 does not track or otherwise monitor the time interval required to dispense the liquid coating material onto the substrate 12 during the execution of the coating program. As such, the controller 18 does not calculate a volume flow rate for the liquid coating material dispensed onto each substrate 12 during the coating program.
- the controller 18 may adjust the velocity of the robot 14 as a control parameter to adjust the total dispensed volume of coating material dispensed from the applicator 16 onto the substrate 12 . For example, if the controller 18 determines that the total dispensed volume is less than the desired volume, then the controller 18 could reduce the velocity of the robot 14 by an amount effective to compensate for the discrepancy that effectively increases the total amount of liquid coating material dispensed onto the areas or components of the substrate 12 .
- the controller 18 could increase the velocity of the robot 14 by an amount effective to compensate for the discrepancy that effectively decreases the total amount of liquid coating material dispensed onto the areas or components of the substrate 12 .
- the controller 18 may adjust the temperature of the liquid coating material as a control parameter to adjust the total dispensed volume.
- the controller 18 would communicate electrical signals to the pressurized liquid supply 38 that command the pressurized liquid supply 38 to heat or to cool the liquid coating material.
- changing the temperature of the liquid coating material changes its viscosity. For example, if the total dispensed volume dispensed from the applicator 16 onto the substrate 12 is too low, the temperature of the liquid coating material is increased to decrease its viscosity and, thereby, create a higher flow of liquid coating material to the applicator 16 .
- Robot velocity and coating material temperature are variables that are independent of the fluid pressure of the liquid coating material. Therefore, a separate control loop could utilize fluid pressure from the pressurized fluid supply 32 to, for example, manipulate the stream 42 to achieve a desired fan width of a spray pattern from the applicator 16 while, concurrently, the volume of liquid coating material being dispensed onto the substrate 12 is maintained near the desired set point by varying robot velocity or coating material temperature.
Abstract
Systems and methods for applying liquid coating materials to a substrate, such as an electronic component or circuit board. A control system (18, 24, 26) of a coating system (10) controls an applicator (16) and a robot (14) moving the applicator (16) to apply the liquid coating material to the substrate (12) in accordance with the information contained in a coating program. The control system (18, 24, 26) determines a volume of liquid coating material actually dispensed onto the substrate (12) during the coating program, and compares the dispensed volume to a desired dispensed volume of liquid coating material to produce an error signal representing the difference between the calculated and desired volume values. The control system (18, 24, 26) uses the error signal to change the dispensed volume of liquid coating material on a subsequent substrate by a future coating program.
Description
- This application claims the benefit of U.S. Provisional Application No. 60/806,024, filed Jun. 28, 2006, the disclosure of which is hereby incorporated by reference herein in its entirety.
- The present invention relates generally to dispensing liquid coating materials and, more particularly, to a system and method for applying liquid coating material, such as a conformal coating material, to a substrate, such as a circuit board.
- Many industrial applications require the use of discrete, well-defined and uniform coatings applied to predetermined areas. Such coatings are very useful in varied processes, such as conformal coatings on non-uniform or irregular substrates like electronic circuit boards. In the production of discrete coatings for application to discrete substrate areas, for example, it is desirable to obtain broad, uniform coatings in a non-contact application process with sharp, square, cut-on and cut-off edges with no stringing of material. In particular, conformal coating material is used to protect selected components of a circuit board from moisture, dirt, etc.
- When such coatings are dispensed, the volume of coating material dispensed onto the substrate may be controlled so that substantially the same amount of coating material is dispensed onto successive substrates during production. In one conventional coating material dispensing system, a flow meter is supplied in the line coupling the fluid supply with the dispensing valve. When the dispensing valve is opened, the volume of material dispensed is read using the encoder counts of the flow meter. The time interval during which the measured volume of material was dispensed is also determined and a volumetric flow rate is calculated. This calculated flow rate is compared to a set point representing a desired flow rate and, if necessary, a correction is made to adjust the actual flow rate towards the desired flow rate.
- Conventional coating material dispensing systems may be inaccurate if used for applying conformal coating selectively to components or areas of a circuit board because the dispensing valve will only be opened for a very short time interval, perhaps as short as a few milliseconds. During the time interval that the dispensing valve is open, only a very small amount of coating material will be dispensed. The flow meter senses the small dispensed amount as a relatively small number of encoder counts.
- Either the time interval, the number of encoder counts, or both, may be characterized by significant inaccuracies, which will result in an inaccurate calculation of flow rate. The system then compares the inaccurate calculated flow rate to the set point to produce an “error.”f Because of the inaccuracy, the error from the comparison may result in a correction of the wrong magnitude or even a correction in the wrong direction. Either result may cause an improper amount of coating material to be dispensed the next time the dispensing valve is opened. The result could easily be that the system produces so much inaccuracy it is of little practical value to the user.
- Therefore, an improved apparatus and method of coating materials are needed that are not susceptible to such inaccuracies in the dispensed amount of coating material.
- In one embodiment, a system is provided for applying a liquid coating material to a substrate, such as a circuit board, as determined by a coating program. The system may comprise an applicator configured to receive the liquid coating material from a reservoir and configured to dispense the liquid coating material onto the substrate. A regulator is configured to regulate a flow of the liquid coating material to the applicator. A meter is configured to generate volume signals representing the volumes of liquid coating material flowing to the applicator, The system includes a robot configured to move the applicator relative to the substrate and a control system configured to access the coating program. The control system is configured to control the robot and the applicator to apply the liquid coating material to the substrate in accordance with information in the coating program. At completion of the coating program, the control system is configured to utilize one or more volume signals from the meter to determine a dispensed volume of the liquid coating material applied to the substrate during the coating program. The control system is further configured to compare the dispensed volume to a desired dispensed volume of the liquid coating material for the coating program and to produce an error signal representing the difference between the dispensed volume and the desired dispensed volume. The control system is configured to reduce the difference between the dispensed volume of the liquid coating material on a subsequent substrate and the desired dispensed volume based on the error signal.
- In another embodiment, a method is provided for applying liquid coating material to a substrate as determined by a coating program. The method comprises dispensing the liquid coating material from an applicator to the substrate as directed by the coating program, determining a dispensed volume of the liquid coating material applied to the substrate after the coating program concludes, comparing the dispensed volume to a desired dispensed volume of the liquid coating material for the coating program, and producing an error signal representing the difference between the dispensed volume and the desired dispensed volume. The method further includes changing the dispensed volume of the liquid coating material applied to a subsequent substrate based upon the error signal.
- The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate exemplary embodiments of the invention and, together with a general description of embodiments of the invention given above, and the detailed description given below, serve to explain the principles of the embodiments of the invention.
- The FIGURE is a schematic view of a computer-controlled coating system in accordance with an embodiment of the invention.
- With reference to the FIGURE, a
coating system 10 may be used to apply a liquid coating material, such as a conformal coating material, to a series of substrates, such as therepresentative substrate 12. Although the operation of arepresentative coating system 10 will be described herein, those skilled in the art will appreciate that a wide variety of other coating systems may be used to complete the method described below. Thecoating system 10 may be, for example, a Model SC-105, SC-205, or SC-400 conformal coating applicator commercially available from Asymtek (Carlsbad, Calif.). - In the representative embodiment, the
coating system 10 includes a multi-axis electro-mechanical positioner orrobot 14 and aconformal coating applicator 16 coupled with therobot 14. For example, theapplicator 16 may be suspended from therobot 14 above thesubstrates 12. In one embodiment, therobot 14 is adapted to move theapplicator 16 in directions defined within an X-Y-Z Cartesian coordinate frame to supply three degrees of freedom. Therobot 14 includes a drive coupled to independently controllable motors (not shown) in a known manner. Theapplicator 16 is manipulated byrobot 14 relative to thesubstrate 12 for applying amounts of liquid coating material to selected areas of thesubstrate 12. - A
programmable controller 18 coordinates the movements and actuations of thecoating system 10. Thecontroller 18 may be a programmable logic controller (PLC), a microprocessor based controller, personal computer, or another conventional control device capable of carrying out the functions described herein as understood by a person having ordinary skill in the art. A human machine interface (HMI)device 19 is operatively connected to thecontroller 18 in a known manner. TheHMI device 19 may include input devices and controls, such as a keypad, pushbuttons, control knobs, a touch screen, etc., and output devices, such as displays and other visual indicators, that are used by an operator to control the operation of thecontroller 18 and, thereby, control the operation of thecoating system 10. -
Substrates 12, for example, printed circuit boards with attached semiconductor die and other components, are supported in an operative relationship with theapplicator 16 in a known manner and liquid coating material is applied from theapplicator 16 onto selected areas on eachsubstrate 12. Depending on the dispensing application, a series ofsubstrates 12 as may be coated in a batch mode. Alternatively, thesubstrates 12 may be continuously transported past theapplicator 16 on anautomatic conveyor 20. Theconveyor 20 has a conventional design and, furthermore, may have a width that can be adjusted to accommodatesubstrates 12 of different dimensions. Theconveyor 20, which may also include pneumatically operated lift and lock mechanisms (not shown), receives command signals from aconveyor controller 22. - The
applicator 16 is electrically coupled with anapplicator controller 24, which supplies command signals that control the operation of theapplicator 16. Amotion controller 26 is electrically coupled by acommunication link 21 with therobot 14. Thesolenoid 34 is electrically coupled by acommunication link 23 with themotion controller 26. Theconveyor controller 22 andmotion controller 26 are also electrically coupled withcontroller 18 overrespective communication links motion controller 26 is electrically coupled over acommunication link 29 with theconveyor controller 22. Thus, a programmable control system forcoating system 10 includes thecontroller 18, theapplicator controller 24, themotion controller 26, and theoptional conveyor controller 22 as interconnected components that communicate with each other. - The
motion controller 26 supplies command signals to therobot 14 over thecommunication link 21. The command signals are used by therobot 14 to control the position and/or velocity of theapplicator 16. Generally, therobot 14 includes electric motors, such as servo motors or stepper motors, that drive the motion of the different axes of therobot 14. -
Applicator 16 includes abody 30 suspended from therobot 14, anozzle 31 mounted to one end of thebody 30, and a flow control mechanism (not shown) disposed inside thebody 30. The flow control mechanism insidebody 30 may comprise an air-actuated needle, an air piston, and a valve seat that cooperate to form a dispensing valve (not shown) operative to control a flow of conformal coating material dispensed from theapplicator 16. Apressurized fluid supply 32 and asolenoid 34 cooperate to supply pressurized fluid in a known manner to regulate the actuation of the dispensing valve inside thebody 30. Specifically, thesolenoid 34 controls air pressure in aconduit 33 connecting thepressurized fluid supply 32 with theapplicator 16 so as to move the air piston and, thereby, move the needle relative to the valve seat to provide an opened position for the dispensing valve in which liquid coating material is dispensed from theapplicator 16 onto thesubstrate 12. Thesolenoid 34 may vent the air pressure acting on the air piston to permit the needle to return to a closed position in which the needle contacts the valve seat to discontinue the dispensing. - The
coating system 10 includes apressurized liquid supply 38 that operates in a known manner under the command ofcontroller 18 to generate a continuous stream or supply of the pressurized liquid coating material. For example, thepressurized liquid supply 38 may include a diaphragm or piston pump that siphons amounts of liquid coating material from a reservoir and then pumps the stream of liquid coating material under pressure from the reservoir through a fluid path to theapplicator 16. Thepressurized liquid supply 38 is electrically connected by acommunication link 39 with thecontroller 18, which can regulate operating parameters such as the temperature and pressure of a liquid coating material by communicating appropriate control signals to thepressurized liquid supply 38 overcommunication link 39. - The
pressurized liquid supply 38 is optionally configured with one or moreconventional heating elements 38a that are electrically coupled with aconventional temperature controller 60 that is electrically coupled with thecontroller 18. The construction and operation of conventional heating elements, such asheater elements 38a, and temperature controllers, such astemperature controller 60, are understood by a person having ordinary skill in the art. In an alternative embodiment, theapplicator 16 may include heating element (not shown) or a heating element (not shown) may be disposed in the one of theconduits pressurized liquid supply 38 and thenozzle 31, the liquid coating material may be heated in this flow path before being applied to thesubstrate 12. - The
applicator 16 includes aliquid inlet 36 that is coupled in fluid communication with apressurized liquid supply 38. The liquid coating material is supplied from the pressurizedliquid supply 38 to theapplicator 16 through theliquid inlet 36 for regulated dispensing out of a dispensing orifice (not shown) in thenozzle 31. Thebody 30 has afluid inlet 40 coupled withpressurized fluid supply 32 and internal passageways (not shown) that direct the pressurized fluid to outlets in the vicinity of the dispensing orifice innozzle 31, where the pressurized fluid is discharged to interact with and manipulate thestream 42 of liquid coating material that is sprayed from theapplicator 16. Afluid regulator 43, which communicates overcommunication link 45 withmotion controller 26, controls the flow of pressurized fluid from thepressurized fluid supply 32 to thefluid inlet 40. A representative applicator similar toapplicator 16 is described in U.S. Pat. No. 7,028,867, the disclosure of which is hereby incorporated by reference herein in its entirety. - The
system 10 is operated as instructed by a library of operational cycles or sequences that are stored in amemory 44 associated with thecontroller 18 and/or stored in other computers. The operational sequences are recalled and placed in a particular operational program, as desired, executing on thecontroller 18. The operational sequences can be adjusted to accommodate different environmental conditions, different types ofsubstrates 12, or different types of conformal coating material. During operation, thecontroller 18 can transfer an entire operational program as electrical signals overcommunication link 25 to themotion controller 26 for execution at themotion controller 26. Alternatively, thecontroller 18 can transfer one or more instructions as electrical signals overcommunication link 25 in a batch of instructions and data to themotion controller 26 for subsequent execution. The operator may enter parameters, such as the type ofsubstrate 12, the type of liquid coating material, the liquid pressure, the assist air pressure, the velocity of theapplicator 16, the distance between thesubstrate 12 andapplicator 16, etc., at theHMI device 19. The entered parameters are stored in thememory 44 ofcontroller 18 for future use in an operational sequence. Eachsubstrate 12 is matched by thecontroller 18 with a coating program that determines which specific components and areas of thesubstrate 12 are to be coated with liquid coating material. Typically, the liquid coating material is applied to only selected areas and/or components on thesubstrate 12. - With continued reference to the FIGURE, an “air over fluid” (A/F)
regulator 50 and aflow meter 52 are situated in the flow path for the liquid coating material from the pressurizedliquid supply 38 to theliquid inlet 36 of theapplicator 16. As a result, the liquid coating material is constrained to flow through the A/F regulator 50 and flowmeter 52 in transit from the pressurizedliquid supply 38 to theapplicator 16. A liquid input of the A/F regulator 50 is coupled by aconduit 51 with a liquid outlet of thepressurized liquid supply 38. Similarly, the A/P regulator 50 has a liquid outlet coupled by aconduit 53 with a liquid input of theflow meter 52, which in turn has a liquid outlet coupled by aconduit 55 with theliquid inlet 36 of theapplicator 16. - The A/
F regulator 50 controls the fluid pressure of the pressurized liquid material in transit in the fluid path to theapplicator 16. Thecontroller 18 is electrically coupled by acommunication link 57 with a)regulator 54. In one embodiment, theregulator 54 may be a “voltage over pressure” (E/P) regulator that receives a control voltage from themotion controller 26 and includes a transducer that converts the control voltage to a fluid pressure. Alternatively, theregulator 54 may receive a control current or a serial communications signal, instead of a control voltage, for conversion to a fluid pressure. Theregulator 54 delivers pressurized fluid to the A/F regulator 50 for use in controlling the fluid pressure of the liquid coating material flowing through the A/F regulator 50. - The A/
F regulator 50 is positioned in aconduit 35 defining a fluid path between thepressurized liquid supply 38 and theflow meter 52. In an alternative embodiment, theflow meter 52 may be positioned in the fluid path between thepressurized liquid supply 38 and the A/F regulator 50 so that theflow meter 52 is upstream from the A/F regulator 50. With this alternative arrangement, theflow meter 52 would alter the pressure of the liquid coating material after the liquid coating material has flowed through the A/F regulator 50. - The
controller 18 is electrically coupled by acommunication link 59 with theflow meter 52. In response to the flow of liquid coating material fromconduit 53 toconduit 55, theflow meter 52 generates a string of counts or electrical pulses each representing a fixed volume of liquid coating material flowing through or past theflow meter 52. Alternatively, the string of electrical pulses from theflow meter 52 may be communicated from the flow meter to themotion controller 26 and then relayed from themotion controller 26 to thecontroller 18. In one embodiment, theflow meter 52 may comprise a gear meter that rotates in response to flow through the gear meter and, for a fixed amount of rotation representing a known volume, generates an electrical pulse with an encoder that is transmitted as an electrical signal in a signal stream to thecontroller 18. For example, the gear meter may generate a pulse for every 0.04 cubic centimeters of liquid coating material flowing through theflow meter 52. - In use and with reference to the FIGURE, the
controller 18 obtains a coating program for thesubstrate 12 whensubstrate 12 is properly positioned relative to theapplicator 16. The coating program determines which components and/or areas of thesubstrate 12 are to be coated with liquid coating material, which is usually applied in strips. For example, possibly twenty-five separate components or areas of asubstrate 12 may be coated with strips of the liquid coating material. Thecontroller 18 retrieves an operational sequence from thememory 44 ofcontroller 18 and, in turn, communicates control signals to themotion controller 26 overcommunication link 25 representing the operational sequence. Themotion controller 26 sends command signals to therobot 14 overcommunication link 21 that instruct therobot 14 to move theapplicator 16 at specified velocities to desired locations with respect to thesubstrate 12. Themotion controller 26 controls the movements of therobot 14 to move theapplicator 16 in a plane (e.g., X and Y directions) across thesubstrate 12, opening and closing the dispensing valve in theapplicator 16 as necessary during this movement to apply the liquid coating material to the desired components and areas of thesubstrate 12. - Specifically, at any particular location on
substrate 12, themotion controller 26 also provides a command signal to thesolenoid 34 to cause it to change state to open the dispensing valve causing discharge of liquid coating material fromnozzle 31. Concurrently, themotion controller 26 provides command signals to therobot 14 to initiate motion ofapplicator 16 relative to thesubstrate 12. Thestream 42 of liquid coating material may be optionally manipulated by an assist fluid, such as air, that affects the shaping of thestream 42 discharged from theapplicator 16. After a predetermined time lapses, themotion controller 26 subsequently changes the state of the valve command signal to return thesolenoid 34 back to its original state. This action closes the dispensing valve to discontinue the discharge of liquid coating material from thenozzle 31 of theapplicator 16. Themotion controller 26 may cause the dispensing valve of theapplicator 16 to open and close the dispensing valve multiple times (e.g., twenty-five times) during the extent of the coating program so that multiple components and areas of thesubstrate 12 receive an amount of liquid coating material. - During the coating program or in preparation for the execution of the coating program, the
controller 18 provides electrical signals to themotion controller 26, which prompt themotion controller 26 to provide command signals to theregulator 54, Theregulator 54 controls an air pressure supplied to the A/F regulator 50 to selecting a liquid pressure for the pressurized liquid coating material flowing from the pressurizedliquid supply 38 to theapplicator 16. The selected value of liquid pressure, which is dispensing application dependent, may further depend on the desired flow rate of the liquid coating material. The flow rate for the liquid coating material is influenced, among other factors, by the liquid pressure, the diameter of the discharge orifice in the dispensingnozzle 31, the material viscosity, etc. -
Coating system 10 is significantly more accurate than conventional conformal coating systems becausesystem 10 determines the volume of coating material dispensed over anentire substrate 12, which can be calculated relatively accurately, compares that calculated value to a set point, and makes a correction, if needed, based on this relatively accurate calculation. - At the start of each coating program for
substrate 12, thecontroller 18 obtains an “encoder count” from theflow meter 52. For example, thecontroller 18 may consider the initial encoder count to be zero. During the coating program that applies the liquid coating material to the areas and components onsubstrate 12, thecontroller 18 receives the string of pulses from theflow meter 52 and incrementally accumulates a total number of pulses as the liquid coating material flows to theapplicator 16. At the conclusion of the coating program for eachsubstrate 12, the pulse string from theflow meter 52 ends. Thecontroller 18 includes an accumulator that contains the total number of pulses communicated from theflow meter 52 during the coating program. - Based upon a known calibration of the amount of liquid coating material represented by each pulse generated by the
flow meter 52, thecontroller 18 converts the total number of pulses to a total volume of liquid coating material dispensed onto thesubstrate 12, Thecontroller 18 compares the total dispensed volume with a desired total dispensed volume and produces an error signal representing the difference between the calculated and desired dispensed volumes. As necessary and based upon the error signal, thecontroller 18 communicates a control signal to themotion controller 26, which supplies a control current, a control potential, or a control signal to theregulator 54 to manipulate the flow constriction represented by the A/F regulator 50 in order to compensate for the difference between the calculated and desired dispensed volumes of liquid coating material. Generally, the fluid pressure is set in proportion to the input current, potential, or control signal to theregulator 54. - If the total dispensed volume is too low, the control signal communicated from the
controller 18 to themotion controller 26 causes themotion controller 26 to react by increasing the control potential applied to the E/P transducer 54. This action opens the A/F regulator 50 wider to increase the flow of liquid coating material to theapplicator 16. If the total dispensed volume is too high, the control signal communicated from thecontroller 18 to themotion controller 26 causes themotion controller 26 to react by decreasing the control potential applied to the E/P transducer 54. This action causes theEP transducer 54 to react by closing the A/F regulator 50 to reduce the flow of liquid coating material to theapplicator 16. - For
subsequent substrates 12 that are coated bysystem 10 according to the coating program, the correction is in a direction that is predicted to reduce the error signal. As a result, the discrepancy between the total dispensed volume and desired total dispensed volume forsubsequent substrates 12 should be reduced. If the error signal is not adequately compensated, additional corrections can be made as the calculated total dispensed volume is compared with the desired total dispensed volume. Eachsubstrate 12 that is processed according to the coating program typically receives an identical total dispensed volume of liquid coating material on the areas and components. - The correction to the flow of liquid coating material under the closed loop control may be implemented by use of control windows in the software code executing on the
controller 18. The inner control window represents the maximum permissible deviation from the desired total volume, either above or below the desired total volume, that if exceeded will initiate a responsive action by thecontroller 18. The outer control window represents the maximum permissible deviation from the desired total volume, either above or below the desired total volume, that if exceeded will initiate a response by thecontroller 18 that causes a drastic reaction, such as stopping thesystem 10 and/or sounding an alarm. - If the calculated total volume dispensed during the coating program is within a first percentage (e.g., ±1%) of the desired total dispensed volume, the
controller 18 makes no correction within this inner control window. If the calculated total volume dispensed during the control program is more than a second percentage (e.g., ±10%) of the desired total dispensed volume, thecontroller 18 may stop thesystem 10 and/or sound an alarm outside of this outer control window as determined by the user's preference. Thesubstrate 12 being coated when the coating operation deviates outside of the outer control window is flagged as having an out of tolerance conformal coating applied to it. If the calculated total volume dispensed during the coating program is between the inner and outer control windows, thecontroller 18 may correct the flow of liquid coating material to theapplicator 16 within this intermediate control window without sounding an alarm. The correction, which is executed as described above, is of a magnitude and sense to counteract the out of tolerance condition. For example, the corrective action may be taken if the total dispensed volume is greater ±5% of the desired total dispensed volume. - In this way, any trends affecting total dispensed volume during a coating program are detected contemporaneously with their occurrence and responsive corrections are made as automatic intervention to offset the trend. Unless the control falls outside of the outer control window, the responsive corrections are implemented without operator intervention. For example, a change in the viscosity of the liquid coating material may cause the total dispensed volume to shift away from the desired total dispensed volume. The viscosity change is detected as a change in the total dispensed volume and, subsequently, is corrected by an action executed by the
controller 18.System 10 assists the customer in maintaining a high quality liquid material coating operation by utilizing a relatively accurate dispensed volume calculation compared to conventional systems, while ensuring that the customer does not waste liquid coating material by applying more material than is necessary. - The
controller 18 of thesystem 10 does not track or otherwise monitor the time interval required to dispense the liquid coating material onto thesubstrate 12 during the execution of the coating program. As such, thecontroller 18 does not calculate a volume flow rate for the liquid coating material dispensed onto eachsubstrate 12 during the coating program. - In an alternative embodiment, the
controller 18 may adjust the velocity of therobot 14 as a control parameter to adjust the total dispensed volume of coating material dispensed from theapplicator 16 onto thesubstrate 12. For example, if thecontroller 18 determines that the total dispensed volume is less than the desired volume, then thecontroller 18 could reduce the velocity of therobot 14 by an amount effective to compensate for the discrepancy that effectively increases the total amount of liquid coating material dispensed onto the areas or components of thesubstrate 12. Conversely, if thecontroller 18 determines that the total dispensed volume is greater than the desired volume, then thecontroller 18 could increase the velocity of therobot 14 by an amount effective to compensate for the discrepancy that effectively decreases the total amount of liquid coating material dispensed onto the areas or components of thesubstrate 12. - In another alternative embodiment, the
controller 18 may adjust the temperature of the liquid coating material as a control parameter to adjust the total dispensed volume. To that end, thecontroller 18 would communicate electrical signals to thepressurized liquid supply 38 that command thepressurized liquid supply 38 to heat or to cool the liquid coating material. As known to a person having ordinary skill in the art, changing the temperature of the liquid coating material changes its viscosity. For example, if the total dispensed volume dispensed from theapplicator 16 onto thesubstrate 12 is too low, the temperature of the liquid coating material is increased to decrease its viscosity and, thereby, create a higher flow of liquid coating material to theapplicator 16. This will operate to increase the amount of liquid coating material dispensed onto the areas or components of thesubstrate 12 during the coating program. Conversely, if the total dispensed volume dispensed from theapplicator 16 onto thesubstrate 12 is too high, the temperature of the liquid coating material is decreased to increase its viscosity and, thereby, reduce the flow of liquid coating material to theapplicator 16. This will operate to decrease the amount of liquid coating material dispensed onto the areas or components of thesubstrate 12 during the coating program. - Robot velocity and coating material temperature are variables that are independent of the fluid pressure of the liquid coating material. Therefore, a separate control loop could utilize fluid pressure from the
pressurized fluid supply 32 to, for example, manipulate thestream 42 to achieve a desired fan width of a spray pattern from theapplicator 16 while, concurrently, the volume of liquid coating material being dispensed onto thesubstrate 12 is maintained near the desired set point by varying robot velocity or coating material temperature. - While the invention has been illustrated by the description of one or more embodiments thereof, and while the embodiments have been described in considerable detail, they are not intended to restrict or in any way limit the scope of the appended claims to such detail. Additional advantages and modifications will readily appear to those skilled in the art. The invention in its broader aspects is therefore not limited to the specific details, representative apparatus and methods and illustrative examples shown and described. Accordingly, departures may be made from such details without departing from the scope or spirit of Applicants' general inventive concept.
Claims (17)
1. A system for applying a liquid coating material to a substrate as determined by a coating program, the system comprising:
a reservoir containing the liquid coating material;
an applicator configured to receive the liquid coating material from the reservoir and configured to dispense the liquid coating material onto the components or areas of the substrate;
a meter configured to generate volume signals representing the volumes of liquid coating material flowing to the applicator;
a robot mechanically coupled with the applicator, the robot configured to move the applicator relative to the substrate; and
a control system configured to access the coating program, the control system configured to control the robot and the applicator to apply the liquid coating material to the substrate in accordance with information in the coating program, wherein at completion of the coating program, the control system configured to utilize one or more volume signals from the meter to determine a dispensed volume of the liquid coating material applied to the substrate during the coating program, the control system configured to compare the dispensed volume to a desired dispensed volume of the liquid coating material for the coating program and to produce an error signal representing a difference between the dispensed volume and the desired dispensed volume, and the control system configured to reduce the difference between the dispensed volume of the liquid coating material on a subsequent substrate and the desired dispensed volume based on the error signal.
2. The system of claim 1 wherein the control system is configured to implement an inner control window and an outer control window in response to the error signal.
3. The system of claim 2 wherein the control system is configured to take no action if the error signal is within the inner control window.
4. The system of claim 2 wherein the control system is configured to generate an alarm if the error signal is outside of the outer control window.
5. The system of claim 2 wherein the control system is configured to stop the system if the error signal is outside of the outer control window.
6. The system of claim 1 further comprising:
a regulator configured to regulate a flow of the liquid coating material from the reservoir to the applicator, the regulator electrically coupled with the control system, and the control system is configured to manipulate the regulator to modify the flow for changing the dispensed volume of the liquid coating material on the subsequent substrate.
7. The system of claim 1 further comprising:
a heater configured to regulate the temperature of the liquid coating material dispensed by the applicator, the heater electrically coupled with the control system, and the control system is configured to manipulate the heater to change the dispensed volume of the liquid coating material on the subsequent substrate.
8. The system of claim 1 wherein the control system is configured to adjust a velocity at which the robot moves the applicator relative to the substrate to change the dispensed volume of the liquid coating material on the subsequent substrate.
9. A method of applying liquid coating material to a substrate as determined by a coating program, the method comprising:
dispensing the liquid coating material from an applicator to the substrate as directed by the coating program;
moving the applicator relative to the substrate while the liquid coating material is dispensed;
determining a dispensed volume of the liquid coating material applied to the substrate;
comparing the dispensed volume to a desired dispensed volume of the liquid coating material for the coating program;
producing an error signal representing the difference between the dispensed volume and the desired dispensed volume; and
changing the dispensed volume of the liquid coating material applied to a subsequent substrate based upon the error signal.
10. The method of claim 9 wherein changing the dispensed volume of the liquid coating material further comprises:
regulating the flow of the liquid coating material to the applicator with a regulator.
11. The method of claim 9 wherein determining the dispensed volume further comprises:
generating volume signals representing volumes of liquid coating material flowing to the applicator; and
determining the dispensed volume based upon at least one of the volume signals.
12. The method of claim 9 further comprising:
communicating the volume signals to a controller that determines the dispensed volume, compares the dispensed volume to the desired dispensed volume, and produces the error signal; and
communicating a control signal to a regulator for changing the dispensed volume of the liquid coating material on the subsequent substrate.
13. The method of claim 9 wherein changing the dispensed volume of the liquid coating material further comprises:
implementing an inner control window for changing the dispensed volume; and
taking no action if the error signal is within the inner control window.
14. The method of claim 9 wherein changing the dispensed volume of the liquid coating material further comprises:
implementing an outer control window for changing the dispensed volume; and
generating an alarm if the error signal is outside of the outer control window
15. The method of claim 9 wherein changing the dispensed volume of the liquid coating material further comprises:
implementing an outer control window for changing the dispensed volume; and
stopping the flow of liquid material to the applicator if the error signal is outside of the outer control window.
16. The method of claim 9 wherein changing the dispensed volume of the liquid coating material further comprises:
adjusting a temperature of the liquid coating material based upon the error signal when dispensing the liquid coating material onto another substrate.
17. The method of claim 9 wherein changing the dispensed volume of the liquid coating material further comprises:
adjusting a velocity at which the applicator is moved relative to the substrate when dispensing the liquid coating material onto another substrate.
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PCT/US2007/071759 WO2008002825A1 (en) | 2006-06-28 | 2007-06-21 | Systems and methods for applying a liquid coating material to a substrate |
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Cited By (9)
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Also Published As
Publication number | Publication date |
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KR20090027644A (en) | 2009-03-17 |
KR101454351B1 (en) | 2014-10-23 |
CN101472834B (en) | 2013-01-23 |
EP2041020A4 (en) | 2010-11-24 |
TW200800411A (en) | 2008-01-01 |
US8545929B2 (en) | 2013-10-01 |
CN101472834A (en) | 2009-07-01 |
EP3165289A1 (en) | 2017-05-10 |
JP2009542430A (en) | 2009-12-03 |
EP2041020A1 (en) | 2009-04-01 |
JP5415265B2 (en) | 2014-02-12 |
US20120040088A1 (en) | 2012-02-16 |
WO2008002825A1 (en) | 2008-01-03 |
EP3165289B1 (en) | 2022-12-14 |
EP2041020B1 (en) | 2016-10-12 |
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