Claims
- 1. An electrostatic rotary atomizing spray device for spraying a liquid coating material, comprising:
- an atomizer housing which defines an interior chamber therein;
- a motor within the atomizer housing that produces an exhaust airflow and is connected to a rotary atomizer head; and
- an air passageway within the atomizer housing for directing at least a portion of the exhaust airflow from the motor into the interior of the atomizer head.
- 2. The electrostatic rotary atomizing spray device of claim 1 further comprising:
- a drive shaft within the interior chamber of the atomizer housing, the drive shaft being attached at a first end to the motor and at a second opposite end to the rotary atomizer head; and
- a fluid tube being disposed within the drive shaft and spaced therefrom by an air passage, the fluid tube for directing a flow of the liquid coating material to the atomizer head, and wherein the motor is an air turbine motor and the air passageway directs a first portion of the exhaust airflow from the air turbine motor into the air passage to create an air barrier and then into the atomizer head, and a second portion of the exhaust airflow to a location external to the atomizer housing.
- 3. The electrostatic rotary atomizing spray device of claim 2 wherein the air passageway includes a flow restrictor through which flows the second portion of the exhaust air to the location external to the atomizer housing.
- 4. The electrostatic rotary atomizing spray device of claim 3 wherein the atomizer housing has an outer casing having a rear end section with an open front end, and a front end section mounted within the open front end of the rear end section to form an air gap through which the second portion of the exhaust air flows out from the atomizer housing and along an outer surface of the front end section of the atomizer housing.
- 5. The electrostatic rotary atomizing spray device of claim 4 further comprising:
- the rotary atomizer head having a bore extending therethrough; and
- a flow distributor mounted in the bore of the rotary atomizer head, the flow distributor having a first flow passage to direct the flow of the coating material from the fluid tube to a forward flow surface of the rotary atomizer head, the flow distributor having a second flow passage to direct the flow of exhaust air from the air passage to the first flow passage to mix with the coating material as it flows to the forward flow surface of the rotary atomizer head.
- 6. The electrostatic rotary atomizing spray device of claim 3 wherein the flow restrictor is sized for about 75% to about 85% of the exhaust air to flow to the location external to the atomizer housing and the remainder into the air passage.
- 7. The electrostatic rotary atomizing spray device of claim 1 wherein said motor is a turbine motor including a turbine wheel in a turbine wheel housing, said turbine wheel arranged with at least one permanent magnet affixed thereto to rotate concentrically about an axis of rotation extending longitudinally through said atomizer housing, said electrostatic rotary atomizing spray device further comprising a speed monitoring device comprising:
- a speed pickup portion mounted within said atomizer housing, said pickup portion including a pole piece arranged with a first end terminating adjacent to but free from contact with said at least one permanent magnet and an induction coil disposed about said pole piece for producing an output signal representing the rotational speed of said turbine wheel;
- a light emitting device receiving said output signal from said induction coil for outputting a light signal representing said rotational speed of said turbine wheel;
- a photo transducer/detector mounted within said atomizer housing relative to said light emitting device to generate an output signal in response to said light signal from said light emitting device;
- an electric circuit for processing said output signal to produce a transmission signal; and
- an electrical conductor for transmitting said transmission signal from said atomizer housing to a control device for said air turbine motor.
- 8. The electrostatic rotary atomizing spray device of claim 1 wherein said rotary atomizer head for atomizing coating material comprises:
- a rotatable head body having a longitudinal axis therethrough and formed with an inner flow surface for directing flow of said coating material across said inner flow surface; and
- an insert aligned coaxially with said longitudinal axis and mounted in said head body to define a gap therebetween which forms a flow path for said flow of coating material from said nozzle to a forward flow surface of said head body.
- 9. The electrostatic rotary atomizing spray device of claim 1 wherein said rotary atomizer head for atomizing coating material comprises:
- a head body having a longitudinal axis therethrough and formed with an inner flow surface to direct flow of said coating material across said inner flow surface, said head body including:
- a mounting portion in base section for mounting said atomizing head onto an end of a rotary drive shaft;
- a nozzle receiving portion in an intermediate section adjoined to said mounting portion to receive a nozzle extending outward from a feed tube projecting from an end of said rotary drive shaft; and
- a distributor mounting portion adjoined to said nozzle receiving portion to receive a distributor;
- said inner flow surface having a forward flow surface terminating at an atomizing lip, said forward flow surface forming a forward cavity across which coating material is propelled radially outward to form atomized droplets of coating material; and
- said distributor having a cylindrically shaped rear section and a frustro-conically shaped forward section, said distribution being aligned with said longitudinal axis and mounted in said atomizing head body so that said frustro-conically shaped forward section is disposed in said head body to define a gap therebetween to form a flow path for said flow of coating material from said nozzle to said forward flow surface.
- 10. The electrostatic rotary atomizing spray device of claim 1 further comprising an intrinsic safety circuit to output a regulated intrinsically safe voltage, which comprises:
- an intrinsic safety barrier device carrying a current from an input, through a sense resistor having an input end and an output end, and to an output from which a regulated intrinsically safe voltage is being output;
- a pass transistor outputting said current to said input of said intrinsic safety barrier device; and
- a voltage regulator having a first input with a control voltage, a second input connected through a first feedback loop to said output end of said sense resistor, and an output connected to an input of said pass transistor.
- 11. The electrostatic rotary atomizing spray device of claim 1 further comprising a voltage regulating circuit, comprising:
- a voltage regulator having an output;
- an intrinsic safety barrier having an input and an output and a sensing resistor between said input and said output, said sensing resistor having an input end and an output end, said output of said voltage regulator being connected to said input; and
- a first feedback loop connected between said output end of said sensing resistor and a first input of said voltage regulator.
- 12. The electrostatic rotary atomizing spray device of claim 1 further comprising:
- a power supply having an input and an output, said output of said power supply being connected to charging elements in said spray device to electrically charge said coating material; and
- a voltage regulating circuit remote from said electrostatic spray device, said voltage regulating circuit comprising:
- a voltage regulator having an output;
- an intrinsic safety barrier having an input and an output and a sensing resistor between said input and said output, said sensing resistor having an input end and an output end, said output of said voltage regulator being connected to said input; and
- a first feedback loop connected between said output end of said sensing resistor and a first input of said voltage regulator, said output of said intrinsic safety barrier being connected to said input of said power supply.
- 13. The method of spraying a liquid coating material with an electrostatic rotary atomizing spray device, comprising the steps of:
- directing a flow of the liquid coating material through a fluid tube extending through the electrostatic rotary atomizing spray device;
- rotating a rotary atomizing head with an air turbine motor that produces an exhaust airflow; and
- directing at least a portion of the exhaust airflow from the air turbine motor through an air passage and then into the atomizer head to mix with the liquid coating material being dispensed by the atomizer head and to prevent the coating material from flowing into the air passage.
- 14. The method of claim 13 further including the steps of:
- directing a first portion of the exhaust airflow from the air turbine motor into the air passage; and
- directing a second portion of the exhaust airflow from the air turbine motor to a location along an outer surface of the front end section of the atomizer housing.
- 15. The method of claim 14 wherein the electrostatic rotary atomizing spray device comprises an atomizer housing which comprises a rear end section and a front end section mounted to the rear end section forming an air gap through which the second portion of the exhaust, airflow flows out from the atomizer housing along an outer surface of the front end section of the atomizer housing.
- 16. The method of claim 15 further including the steps of:
- directing the flow of the coating material from the fluid tube through a flow distributor mounted in the rotary atomizer head so that the coating material flows to a forward flow surface of the rotary atomizer head; and
- mixing the flow of exhaust air from the air passage with the coating material flowing through the flow distributor to the forward flow surface of the rotary atomizer head to propel the flow of the coating material from the forward flow surface of the rotary atomizer head.
- 17. The method of claim 14 further including the step of flowing the second portion of the exhaust airflow corresponding to about 75% to about 85% of the exhaust airflow to the external location and the first portion of the exhaust airflow into the air passage.
- 18. An electrostatic rotary atomizing spray device for spraying a liquid coating material, comprising:
- an atomizer housing which defines an interior chamber therein;
- a rotary drive shaft within the interior chamber of the atomizer housing, the rotary drive shaft being attached at a first end to a motor within the atomizer housing that produces exhaust air and at a second opposite end to a rotary atomizer head;
- a fluid tube being disposed within the atomizer housing for directing a flow of the liquid coating material to the atomizer head; and
- an air passage within the atomizer housing for directing at least a portion of the exhaust air through the interior of the atomizer head.
- 19. The electrostatic rotary atomizing spray device of claim 18 further comprising one or more passageways in the atomizer head through which both a portion of the exhaust air and the liquid coating material flow together.
- 20. The electrostatic rotary atomizing spray device of claim 19 wherein the motor is an air turbine motor, and further comprising:
- an air passageway within the atomizer housing for directing a first portion of the exhaust air from the air turbine motor into the air passage to flow to the atomizer head and a second portion of the exhaust air to a location external to the atomizer housing.
- 21. The electrostatic rotary atomizing spray device of claim 20 wherein the air passageway includes a flow restrictor through which flows the second portion of the exhaust air to the location external to the atomizer housing along an outer surface of the front end section of the atomizer housing.
- 22. The method of spraying a liquid coating material with an electrostatic rotary atomizing spray device, comprising the steps of:
- directing a flow of the liquid coating material through a fluid tube within an atomizer housing and through an atomizer head to a forward flow surface of the atomizer head;
- rotating a drive shaft with a motor, that creates exhaust air, connected at one end to turn the atomizer head connected at a second end of the drive shaft; and
- directing at least a portion of the exhaust air from the atomizer housing through the atomizer head to mix with the liquid coating material.
- 23. The method of claim 22 further including the steps of:
- directing a first portion of the exhaust air from the motor, being an air turbine motor, into an air passage directing the air from the atomizer housing; and
- directing a second portion of the exhaust air from the air turbine motor to a location external to the atomizer housing.
- 24. The method of claim 23 further including the steps of:
- directing the flow of the coating material from the fluid tube through a flow distributor mounted in the rotary atomizer head so that the coating material flows to a forward flow surface of the rotary atomizer head; and
- mixing the flow of exhaust air from the air passage with the coating material flowing through the flow distributor to the forward flow surface of the rotary atomizer head to propel the flow of the coating material from the forward flow surface of the rotary atomizer head.
- 25. The method of claim 22 wherein said motor is an air turbine motor with an air driven turbine wheel, further comprising the steps of:
- generating a magnetic field with at least one permanent magnet affixed to said turbine wheel and arranged to rotate concentrically about said axis of rotation;
- placing a first end of a pole piece adjacent to but free of contact with said at least one permanent magnet and a second end of said pole piece within an induction coil of a signal detection portion for producing an output signal representing the rotational speed of said turbine wheel;
- receiving said output signal from said induction coil with a light emitting device which in turn outputs a light signal representing said rotational speed of said turbine wheel;
- shining said light signal from said light emitting device onto a photo transducer/detector to generate an output signal in response to said light signal; and
- processing said output signal to produce a transmission signal corresponding to said light signal with said photo transducer/detector wherein the speed of said turbine wheel is detected.
- 26. The method of claim 22 further comprising the step of outputting a regulated intrinsically safe voltage from an intrinsic safety circuit, comprising the steps of:
- outputting a current from a pass transistor;
- inputting said current into an input of an intrinsic safety barrier device, transferring said current through a sense resistor and outputting a regulated intrinsically safe voltage from said intrinsic safety barrier device; and
- controlling said current being output from said pass transistor with a voltage regulator having a first input with a control voltage, a second input connected through a first feedback loop to an output end of said sense resistor, and an output connected to an input of said pass transistor.
RELATED APPLICATIONS
This application is a continuation-in-part application of U.S. patent application Ser. No. 08/404,355, since issued as U.S. Pat. No. 5,697,559, entitled ELECTROSTATIC ROTARY ATOMIZING SPRAY DEVICE, filed Mar. 15, 1995, and assigned to the common assignee with the present invention.
This application also relates to U.S. patent application Ser. No. 08/264,606, since issued as U.S. Pat. No. 5,474,236 entitled TRANSFER OF ELECTROSTATIC CHARGE THROUGH THE HOUSING OF A ROTARY ATOMIZING SPRAY DEVICE, filed Jun. 23, 1994, and assigned to the common assignee with the present invention.
US Referenced Citations (23)
Foreign Referenced Citations (3)
Number |
Date |
Country |
574305 |
Jun 1993 |
EPX |
600397 |
Nov 1993 |
EPX |
1107060 |
Mar 1968 |
GBX |
Non-Patent Literature Citations (1)
Entry |
"New Rotary Bell for Metallic Paint Application" Metal Finishing, Oct. 1993 .COPYRGT.Copyright Elsevier Science Publishing Co., Inc. |
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
404355 |
Mar 1995 |
|