Claims
- 1. A power supply for use in an electrostatic spray device comprising:
- a voltage input circuit for supplying an input voltage;
- a voltage multiplication circuit coupled to said voltage input circuit for producing a power supply output in response to said input voltage, the power supply output providing operating power for the electrostatic spray device and including an output voltage and an output load current, said output voltage magnitude varying inversely with the output load current magnitude generally within an operating range of the voltage multiplication circuit and as a function of the magnitude of the output load current; and
- a manipulation circuit coupled to said voltage multiplication circuit for dynamically manipulating the power supply output from the voltage multiplication circuit generally within its standard operating range to vary the functional relationship between the output voltage and the output load current and to maintain both the output voltage and output load current in preselected operating ranges during operation of the power supply;
- whereby the output of the power supply is automatically manipulated during operation of the electrostatic spray device.
- 2. The power supply of claim 1 wherein the manipulation circuit is dynamically responsive to changing load conditions at the power supply output to vary the functional relationships at the power supply output during operation of the spray device.
- 3. The power supply of claim 2 further comprising a feedback line connected between the voltage multiplication circuit and the manipulation circuit and coupled directly to the voltage multiplication circuit to provide a feedback signal proportional to the changing load conditions at the output of the power supply, the manipulation circuit responsive to the feedback signal to dynamically manipulate the power supply output and vary the functional relationship at the power supply output.
- 4. The power supply of claim 1 further comprising a user interface coupled to the manipulation circuit for inputting at least one external command into the manipulation circuit, the manipulation circuit responsive to the external command to vary the output functional relationship and maintain the output voltage and output load current in the preselected operating ranges.
- 5. The power supply of claim 4 wherein the manipulation circuit includes memory to store at least one external command from a user, the manipulation circuit responsive to the stored external command.
- 6. The power supply of claim 1 further comprising a voltage limiting circuit coupled between the multiplication circuit and the manipulation circuit to monitor the level of the output voltage and provide a limit signal, the manipulation circuit responsive to the limit signal to maintain the output voltage and output load current in the preselected operating ranges.
- 7. A power supply for use in an electrostatic spray device dynamically responsive to varying electrical load conditions to maintain an output voltage and an output load current of a power supply output in preselected operating ranges, comprising:
- a voltage input circuit for supplying an input voltage;
- a voltage multiplication circuit coupled to said voltage input circuit for producing the power supply output with an output voltage having a magnitude which varies inversely with the output load current magnitude generally within an operating range of the voltage multiplication circuit and as a function of the magnitude of the output load current, said voltage multiplication circuit having a selectively variable operational loadline which determines the functional relationship between the magnitude of said output voltage and the magnitude of said output load current within said operating range; and
- apparatus for dynamically selecting the operational loadline of the voltage multiplication circuit within its standard operating range by monitoring one of the output voltage and output load current of said voltage multiplication circuit;
- whereby the output of the power supply is dynamically manipulated by selecting the operational loadline of the multiplication circuit during operation of the electrostatic spray device.
- 8. The power supply of claim 7, the selecting apparatus including:
- a feedback device coupled directly to said voltage multiplication circuit to monitor one of said output voltage and output load current and provide a feedback signal proportional to one of said output voltage and output load current; and
- a manipulation circuit responsive to said feedback device and electrically coupled to said voltage multiplication circuit to select the operational loadline of said voltage multiplication circuit and vary the functional relationship at the power supply output in response to said feedback signal.
- 9. The power supply of claim 8 wherein said manipulation circuit is coupled to said multiplication circuit through said voltage input circuit to vary the input voltage magnitude and thereby select the operational loadline of said voltage multiplication circuit in response to variations in load conditions.
- 10. The power supply of claim 9, wherein said manipulation circuit comprises a processor having an input responsive to said feedback apparatus and an output connected to said voltage input circuit to control variation of the input voltage level to said voltage multiplication circuit;
- a user interface coupled to said processor to receive at least one external command from a user and input said command to said processor, said processor responsive to said external command and said feedback signal to modify said processor output to control variation of the input voltage level to said voltage multiplication circuit and, in turn, select the operational loadline of said voltage multiplication circuit.
- 11. The power supply of claim 10 wherein the processor varies the input voltage magnitude by a preselected amount when the power supply output from said voltage multiplication circuit has reached a predetermined load condition boost point;
- said external command to the processor including the designation of at least one load condition boost point and at least one associated input voltage boost parameter to determine the preselected variation in the input voltage magnitude from said voltage input circuit that occurs at said load condition boost point;
- the feedback signal input to said processor means indicating when the power supply output reaches said load condition boost point.
- 12. The power supply of claim 11, wherein said processor includes memory which stores at least one set of pre-programmed load condition boost points and a set of input voltage boost parameters associated with the load condition boost points set for controlling said processor to select the loadline of the voltage multiplication circuit;
- whereby the processor operates automatically according to said pre-programmed set of load condition boost points and boost parameters to select the loadline.
- 13. The power supply of claim 12 wherein said memory stores a plurality of sets of pro-programmed load condition boost points and a plurality of sets of associated input voltage boost parameters for selecting the voltage multiplication circuit loadline;
- the processor responsive to external commands from said user interface to select at least one set of load condition boost points and an associated set of boost parameters from said plurality of sets to thereby select said loadline according to said chosen set;
- whereby the processor stores said sets of load condition boost points and said sets of associated boost parameters for each of a variety of different spray applications, and the user chooses a particular spray application by making the processor select the set of boost points and boost parameters corresponding to a particular spray application through use of the interface.
- 14. The power supply of claim 8, wherein said feedback device includes a resistor connected between the multiplication circuit and ground potential, a current proportional to the output load current flowing through said resistor;
- said feedback signal proportional to the varying voltage across said resistor that results from increases and decreases in the output load current;
- whereby said feedback signal is responsive to varying load current levels.
- 15. The power supply of claim 8 further comprising a voltage limiting circuit coupled to the output of said voltage multiplication circuit, the limiting circuit monitoring the level of the output voltage, and modifying the output voltage level of said multiplication circuit when the output voltage reaches a predetermined maximum voltage level, said voltage limiting circuit maintaining the output voltage below said predetermined maximum voltage level.
- 16. The power supply of claim 15, said voltage limiting circuit being coupled to said manipulation circuit, the manipulation circuit responsive to said voltage limiting circuit to select the operational loadline.
- 17. The power supply of claim 16 wherein voltage limiting circuit is coupled to a voltage divider network which is connected to the output of said multiplication circuit, said voltage divider network yielding a voltage signal that is proportional to the output voltage of the voltage multiplication circuit and the voltage limiting circuit being responsive to said voltage signal.
- 18. A coating system for applying a coating material to an object comprising:
- an electrostatic spray device with an electrode for spraying coating material onto an object;
- a system for supplying coating material to the spray device so that it may be sprayed therefrom;
- a power supply connected to the electrode to charge the electrode so that it electrostatically charges the coating material as it is sprayed from the spray device, the power supply comprising:
- a voltage input circuit for supplying an input voltage;
- a voltage multiplication circuit coupled to said voltage input circuit for producing a power supply output in response to said input voltage, the power supply output including an output voltage and an output load current, said output voltage magnitude varying inversely with the output load current magnitude generally within an operating range of the voltage multiplication circuit and as a function of the magnitude of the output load current; and
- a manipulation circuit coupled to said voltage multiplication circuit for dynamically manipulating the power supply output of the voltage multiplication circuit within its standard operating range to vary the functional relationship between the output voltage and output load current and to maintain both the output voltage and output load current in preselected operating ranges during operation of the power supply;
- whereby the output of the power supply is automatically manipulated during operation of the electrostatic spray device.
- 19. The coating system of claim 18 wherein the output voltage has a magnitude which varies as a function of the magnitude of the output load current, the voltage multiplication circuit having a selectively variable operational loadline which determines the functional relationship between the magnitude of the output voltage and the magnitude of the output load current generally within said operating range, and the manipulation circuit dynamically manipulating the power supply output of the voltage multiplication circuit and selecting the operational loadline of the voltage multiplication circuit within said operating range by monitoring one of the output voltage and the output load current.
- 20. The coating system of claim 19 further comprising:
- a feedback device coupled directly to said voltage multiplication circuit to monitor one of said output voltage and output load current and provide a feedback signal proportional to one of said output voltage and output load current; and
- said manipulation circuit being responsive to said feedback device and electrically coupled to said voltage multiplication circuit to select the operational loadline of said voltage multiplication circuit in response to said feedback signal.
- 21. The coating system of claim 18 wherein the power supply is located externally of the electrostatic spray device, the coating system further comprising:
- a high voltage cable connecting the external power supply to the electrostatic spray device to charge the electrode of the spray device.
- 22. The coating system of claim 18 further comprising a pressurized air supply connected to the electrostatic spray device to facilitate spraying coating material onto an object using air.
- 23. The coating system of claim 18 wherein the coating material supplied to the electrostatic spray device is one of a powder material and a liquid material.
- 24. The coating system of claim 18 wherein the electrostatic spray device is an electrostatic spray gun.
- 25. The coating system of claim 18 further comprising a grounding device to ground the object being sprayed.
- 26. A method of dynamically responding to varying load conditions at the output of an electrostatic spray device during operation of the spray device to achieve improved spray coating of an object comprising:
- a.) providing an input voltage;
- b.) multiplying said input voltage with a multiplier circuit to produce a spray device output including an output voltage and an output load current said multiplying step producing an output wherein said output voltage magnitude varies inversely with the output load current magnitude generally within an operating range of the voltage multiplication circuit and as a function of the magnitude of the output load current;
- c.) dynamically manipulating the output of the multiplier circuit with a manipulation circuit generally within a standard operating range of the multiplier circuit to vary the functional relationship between the output voltage and the output load current and to maintain both the output voltage and output load current in preselected operating ranges during operation of the electrostatic spray device;
- whereby the spray device output is manipulated during operation of the electrostatic spray device for improved spray coating.
- 27. The method of claim 26 wherein the output voltage and output load current of the multiplier circuit are related along a selectively variable operational loadline so that the magnitude of said output voltage generally within said operating range varies as a function of the magnitude of said output load current, the method further comprising:
- a) dynamically manipulating the multiplier circuit output by selecting the loadline of the multiplier circuit in response to one of the output voltage and the output load current to vary the functional relationship at the output.
- 28. The method of claim 27 further comprising:
- a) selecting the loadline using the manipulation circuit which is operably connected to the multiplier circuit to control the operation of the multiplier circuit.
- 29. The method of claim 28 further comprising:
- a) selecting the loadline by coupling a feedback signal directly from the multiplier circuit to the manipulation circuit, the feedback signal being proportional to the spray device output and the manipulation circuit selecting the loadline in response to the feedback signal.
- 30. The method of claim 29 further comprising:
- a.) monitoring the voltage across a resistor that is connected between the multiplier circuit and ground potential to provide the feedback signal, a current proportional to the output load current of the multiplier circuit flowing through the resistor to provide the feedback signal which is proportional to variations in said load current; and
- b) selecting the loadline in response to variations in the feedback signal.
- 31. The method of claim 27 further comprising:
- a.) selecting the loadline of the multiplier circuit by varying the magnitude of said input voltage with the manipulation circuit.
- 32. The method of claim 27 further comprising selecting the loadline by:
- a.) entering at least one external command into a user interface coupled to the manipulation circuit;
- b.) using the external command to select the loadline in response to the spray device output.
- 33. The method of claim 32 further comprising selecting the loadline by:
- a.) entering at least one load condition boost point through said user interface;
- b.) entering at least one input voltage level boost parameter through said user interface;
- c.) selecting the loadline by varying the input voltage magnitude with the manipulation circuit according to the input voltage level boost parameter when the output of the spray device has reached a load condition boost point.
- 34. The method of claim 33 wherein entering the load condition boost point and input voltage level boost parameter further comprises:
- a.) storing, in memory within said manipulation circuit, at least one set of pre-programmed load condition boost points and at least one set of associated, pre-programmed input voltage boost parameters; and
- b) selecting the loadline automatically according to said pre-programmed set of load condition boost points and said set of boost parameters to dynamically manipulate operation of the spray device.
- 35. The method of claim 34 wherein said memory stores a plurality of sets of pre-programmed load condition boost points and a plurality of sets of associated input voltage boost parameters; the step of selecting the loadline further comprising:
- a.) choosing at least one set of load condition boost points and one set of associated boost parameters from said plurality of sets through said user interface;
- whereby the memory stores a set of load condition boost points and a set of associated boost parameters for each of a variety of different spray applications and the user chooses the set of boost points and boost parameters to yield a loadline for a particular spray application.
- 36. The method of claim 26 further comprising:
- a.) monitoring the spray device output with a voltage limiting circuit to determine when said output voltage increases above a predetermined maximum voltage level;
- b) generating a limit signal with the voltage limiting circuit when the output voltage reaches said maximum level; and
- c) modifying the output voltage of said multiplier circuit in response to said limit signal to maintain the output voltage below said predetermined maximum voltage.
- 37. The method of claim 36 further comprising:
- a.) coupling the voltage limiting circuit to the manipulation circuit; and
- b.) varying the input voltage level with the manipulation circuit to modify the output voltage level of said multiplier circuit in response to said voltage limiting circuit limit signal.
- 38. The method of claim 36 wherein the voltage limiting circuit is coupled to a voltage divider network which is connected to the output of the multiplier circuit, the voltage divider network yielding a voltage signal that is proportional to the output voltage of the multiplier circuit, and the voltage limiting circuit using said voltage signal to generate the limit signal.
RELATED APPLICATIONS
This application is a continuation of application Ser. No. 08/054,423 entitled "Improved Spray Gun Device With Dynamic Loadline Manipulation Power Supply" filed Apr. 8, 1993 now abandoned which application is completely incorporated herein by reference.
US Referenced Citations (51)
Foreign Referenced Citations (4)
Number |
Date |
Country |
160179 |
Nov 1985 |
EPX |
2436142A1 |
Feb 1983 |
DEX |
3215644A1 |
Oct 1983 |
DEX |
2077006 |
Dec 1991 |
GBX |
Continuations (1)
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Number |
Date |
Country |
Parent |
54423 |
Apr 1993 |
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