Spray nozzle and spray nozzle system
10195618 ยท 2019-02-05
Inventors
Cpc classification
A01M7/005
HUMAN NECESSITIES
A01M7/0042
HUMAN NECESSITIES
B05B1/267
PERFORMING OPERATIONS; TRANSPORTING
B05B1/3073
PERFORMING OPERATIONS; TRANSPORTING
B05B1/044
PERFORMING OPERATIONS; TRANSPORTING
B05B12/126
PERFORMING OPERATIONS; TRANSPORTING
B05B1/32
PERFORMING OPERATIONS; TRANSPORTING
International classification
B05B1/30
PERFORMING OPERATIONS; TRANSPORTING
A01M7/00
HUMAN NECESSITIES
B05B1/04
PERFORMING OPERATIONS; TRANSPORTING
B05B1/32
PERFORMING OPERATIONS; TRANSPORTING
A01C23/04
HUMAN NECESSITIES
B05B12/12
PERFORMING OPERATIONS; TRANSPORTING
B05B1/26
PERFORMING OPERATIONS; TRANSPORTING
A01C23/00
HUMAN NECESSITIES
Abstract
A variable orifice spray valve including a valve body (42) having a spray discharge orifice (42A) formed therein. The spray valve further includes a liquid flow passage into the valve body, a deflector plate (45) in proximity to the spray discharge orifice (42A) onto which liquid discharged from the orifice is directed, a spray height adjuster (44) adjacent the orifice and movable relative to the deflector plate (45) into the liquid flow path from the orifice, and an adjustment mechanism (43) to adjust the position of the spray height adjuster (44) relative to the discharge orifice (42A).
Claims
1. A variable orifice spray valve including: a valve body having a liquid flow passage into the valve body and a spray discharge orifice formed therein, wherein liquid exits the valve body through the spray discharge orifice such that the liquid flowing from the spray discharge orifice forms a liquid flow path; a deflector plate in proximity to the spray discharge orifice onto which liquid exiting from the orifice is directed; a spray height adjuster, external to and adjacent the spray discharge orifice, and movable relative to the deflector plate into the liquid flow path exiting from the spray discharge orifice; and an adjustment mechanism to adjust the position of the spray height adjuster relative to the spray discharge orifice.
2. The valve of claim 1 wherein the spray height adjuster is provided with a sloped leading edge which directs the liquid path exiting from the orifice towards the deflector plate.
3. The valve of claim 1 wherein the adjustment mechanism includes an actuator responsive to a controller, the actuator being in proximity to the spray height adjuster and cooperates with the spray height adjuster through one or more lever mechanisms to move the spray height adjuster relative to the deflector plate.
4. The valve of claim 3 wherein the actuator is an electric actuator having a shaft connected to a toggle by a first connecting rod, the toggle being mounted to the spray body, the toggle being a lever connected by a second connecting rod to the spray height adjuster, rotation of the shaft of the electric actuator producing movement of the first connecting rod which in turn produces a corresponding movement of the second connecting rod through the toggle, movement of the second connecting rod causing a corresponding movement of the spray height adjuster.
5. The valve of claim 1 wherein the liquid flow path narrows as the spray height adjuster is moved into the path of the liquid exiting the valve body through the orifice.
6. A variable flow rate spray system for providing a distribution of liquid from a vehicle including a pump for supplying pressurised liquid to at least one variable orifice spray valve of claim 1; a speed determinant device providing an output representative of the relative speed of the vehicle; and a flow rate controller controlling the flow of liquid from the at least one variable orifice spray valve and responsive to the output of the speed determinant device, the flow rate controller including: a valve adjustment device, including a hydraulic operated pressure reducing valve between the pump and the at least one variable orifice spray valve, the controller being configured to provide an output to the valve adjustment device to vary the flow rate of liquid from the at least one variable orifice spray valve.
7. The variable flow rate spray system of claim 6 wherein the pressure reducing valve is responsive to the speed determinant device.
8. The variable flow rate spray system of claim 6 wherein the at least one variable orifice spray valve is responsive to the speed determinant device.
9. The variable flow rate spray system of claim 7 wherein the pressure reducing valve is a hydraulic operated proportional pressure reducing valve.
10. The variable flow rate spray system of claim 6 wherein the hydraulic operated pressure reducing valve is a hydraulic operated proportional pressure reducing valve which controls the liquid pressure to the variable orifice spray valve.
11. The variable flow rate spray system of claim 7 wherein the variable orifice spray valve is responsive to the speed determinant device.
12. A method of delivering a distribution of liquid from a moving vehicle comprising the steps of providing a pressurised source of liquid to at least one variable orifice spray valve of claim 1, providing a flow rate controller including a hydraulic operated pressure reducing valve, providing an output from a speed determinant device representative of the relative speed of the vehicle to the flow rate controller, the controller being configured to provide an output to a valve adjustment device to vary the flow rate of liquid from the at least one variable orifice spray valve.
13. A method of delivering a distribution of liquid from a moving vehicle using the variable orifice spray valve of claim 1 wherein the method includes: using the adjustment mechanism to adjust the position of the spray height adjuster relative to the discharge orifice.
14. The valve of claim 2 wherein the liquid flow path narrows as the spray height adjuster is moved into the path of the liquid exiting the valve body through the orifice.
15. The valve of claim 3 wherein the liquid flow path narrows as the spray height adjuster is moved into the path of the liquid exiting the valve body through the orifice.
16. The valve of claim 4 wherein the liquid flow path narrows as the spray height adjuster is moved into the path of the liquid exiting the valve body through the orifice.
17. A variable orifice spray valve including: a valve body having a spray discharge orifice formed therein, wherein liquid flows from the orifice in a liquid flow path; a liquid flow passage into the valve body; a deflector plate in proximity to the spray discharge orifice onto which liquid discharged from the orifice is directed; a spray height adjuster adjacent the orifice and movable relative to the deflector plate into the liquid flow path from the orifice; and an adjustment mechanism to adjust the position of the spray height adjuster relative to the discharge orifice, wherein the adjustment mechanism includes an electric actuator responsive to a controller, the actuator being in proximity to the spray height adjuster and cooperates with the spray height adjuster through one or more lever mechanisms to move the spray height adjuster relative to the deflector plate, and wherein the actuator is an electric actuator having a shaft connected to a toggle by a first connecting rod, the toggle being mounted to the spray body, the toggle being a lever connected by a second connecting rod to the spray height adjuster, rotation of the shaft of the electric actuator producing movement of the first connecting rod which in turn produces a corresponding movement of the second connecting rod through the toggle, movement of the second connecting rod causing a corresponding movement of the spray height adjuster.
18. The valve of claim 17 wherein the liquid flow path narrows as the spray height adjuster is moved into the path of the liquid exiting the valve body through the orifice.
19. A variable flow rate spray system for providing a distribution of liquid from a vehicle including a pump for supplying pressurised liquid to at least one variable orifice spray valve of claim 17; a speed determinant device providing an output representative of the relative speed of the vehicle; and a flow rate controller controlling the flow of liquid from the at least one variable orifice spray valve and responsive to the output of the speed determinant device, the flow rate controller including: a valve adjustment device, including a hydraulic operated pressure reducing valve between the pump and the at least one variable orifice spray valve, the controller being configured to provide an output to the valve adjustment device to vary the flow rate of liquid from the at least one variable orifice spray valve.
20. A method of delivering a distribution of liquid from a moving vehicle comprising the steps of providing a pressurised source of liquid to at least one variable orifice spray valve of claim 17, providing a flow rate controller including a hydraulic operated pressure reducing valve, providing an output from a speed determinant device representative of the relative speed of the vehicle to the flow rate controller, the controller being configured to provide an output to a valve adjustment device to vary the flow rate of liquid from the at least one variable orifice spray valve.
Description
BRIEF DESCRIPTION OF THE DRAWINGS/FIGURES
(1)
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
(11)
(12)
(13)
(14)
(15)
BRIEF DESCRIPTION OF THE EMBODIMENTS
(16)
(17) Referring to
(18) In the embodiments of
(19) A controller 90 receives an output from a speed determinant device, such as a GPS ground speed sensor 93 representative of the relative speed of the vehicle. The ground speed determinant device may also be one or more of a Doppler radar speed transducer or a mechanical connection to the gearbox or vehicle as sources of the ground speed. The ground speed determinant device may also be a vehicle network system (under protocol J1939) which provides information such as ground speed on vehicles linked into the network. Such a system may be used in conjunction with or as an alternative to a GPS ground speed sensor or other means of determining ground speed.
(20) In the case of a GPS, the output is detected from a GPS antenna 92. The controller determines the difference in speed from a calibrated vehicle speed and makes corresponding adjustments to the signal output to a valve adjustment device. In one embodiment, the valve adjustment device includes hydraulic operated proportional pressure reducing diaphragm valves 3, 13, 23 (
(21) The controller 90 may also be provided with an incline switch 94 which provides an output to the controller 90 representative of the inclination of the vehicle from the horizontal. Corrections may then be made to the pressure on the spray head side of the reducing valve to maintain the substantially constant preset distribution rate of water on the ground.
(22) The invention is for the spreading of water from a water cart onto the ground at a pre-set or variable rate relative to ground speed for the purpose of dust suppression, road construction and road maintenance. Controlling the output of water requires either at least one fixed orifice or variable orifice with control over the water pressure. The invention uses a pressure reducing valve which is preferably a diaphragm actuated hydraulic operated pressure reducing valve or a diaphragm actuated hydraulic operated proportional pressure reducing valve to control the water pressure and an orifice valve which may be a fixed or variable orifice to control the water output. One or both of the hydraulic actuated pressure reducing diaphragm valve or the orifice valve should be variable and controlled by the controller 90. The following combinations of reducing valves and orifice valve may be used in order to control the spread rate of water on the ground:
(23)
(24) In this embodiment, the pump is a centrifugal water pump 1 driven by a fixed displacement hydraulic motor at a speed close to engine speed. This means the water pump runs at a speed between 1200 RPM and 2400 RPM. The output pressure and flow from the water pump will be relative to the running speed of the water pump
(25) Water from the centrifugal pump 1 is fed into the diaphragm actuated hydraulic operated pressure reducing valve 2. The pressure reducing valve 2 controls the pressure to a preset, substantially constant and calculated value.
(26)
(27) In
(28) Using the above embodiment, it is possible to place one of a number of pre-set calculated amounts of water on the road depending on the orifice opening with the pressure upstream of the orifice valve 3 regulated to a fixed pre-set pressure and the orifice on the orifice valve 3 opened to a calculated position.
(29) The diaphragm actuated hydraulic operated pressure reducing valve 2, 100 is also used as the water ON/OFF valve in this embodiment.
(30) In the second embodiment shown in
(31)
(32) It is also possible to operate the proportional pressure reducing diaphragm valve (300) with a pressure transducer 306 with a black box 307 and a proportional or On/Off Valve 305 to replace the pressure control valves in Items 306 and 307 above. This is shown in
(33) In another form of proportional pressure reducing diaphragm valve 400 shown in
(34) In
(35) Water from the centrifugal pump 11 is fed into the diaphragm actuated hydraulic operated proportional pressure reducing valve 12.
(36) When using this embodiment, it is possible to place a pre-set calculated amount of water on the road with the pressure upstream of the orifice spray valve 13 varied to a pre-set calculated pressure and the orifice on the orifice valve 13 fixed. The diaphragm actuated hydraulic operated pressure reducing valve 12 may also used as the water ON/OFF valve in this embodiment.
(37) In the embodiment of
(38) The embodiment of
(39) In other possible combinations within the scope of the invention, a variable orifice valve with a pressure reducing valve may be set up in a manner to act as a compensator for the orifice. This system is very similar to the method described in 6. In situations where high accuracy is required, the embodiments of 6, 7, and 8 may be set up with a flow meter (not shown) as the feedback device. The feedback device, using the electronic control system will match the exact calculated flow using the variable orifice or the diaphragm actuated hydraulic operated proportional pressure reducing valve.
(40) Within the scope of the invention, there is a variable orifice spray valve to be used on a water cart to spread water onto the ground at a pre-set calculated rate relative to ground speed or at an uncalculated rate relative to ground speed for the purpose of dust suppression on roads, road construction and road maintenance. This valve is shown in more detail in
(41) As shown in
(42) The actuator may be position controlled by a proportional signal (The most common of these is 4-20 Mill-amps, 0 to 10 volts, 0 to 5 volts). In an alternate form height adjustment mechanism may be driven by a hydraulic cylinder or motor, pneumatic cylinder or motor controlled by an actuator that is a servo system. The preferred form is an electric actuator controlled by a proportional signal but any actuator (electric, hydraulic or pneumatic) that is controlled by a servo positioning system is within the scope of the invention.
(43)
(44) The height adjusting ring 44 is moved by a 90 degree position servo electric rotary actuator 41 using the lever mechanism 43 to convert the rotary motion to a linear movement. The position to which the electric actuator moves is controlled by 0 to 10 volt signal. A control signal of 10 volts will drive the actuator to a 90 degree position. The lever mechanism 43 will move the height adjusting ring 44 to its maximum down position. (Fully open). A control signal of 5 volts will drive the actuator to the 45 degree position. The lever mechanism 43 will move the height adjusting ring 44 to the mid position. (Half open).
(45) The actuator is connected by servo shaft 63 to the lever mechanism 43 through a bearing 64 in mounting 61. The lever mechanism comprises a lever arm 51 pivotally connected to actuating arm 52 pivotally connected to gear arm 53. Gear arm 53 is pivotally mounted to a common axle 59 mounted in bearing 65 and has second actuating arm 54 pivotally connected thereto. Second actuating arm is pivotally connected to height adjusting ring 44 so as translate the movement created by rotation of servo shaft 63 into axial movement of height adjusting ring 44 on the spray valve body 42.
(46) The lever mechanism operates in a manner similar to a gear drive. The full movement of lever 51 is 90 degrees. Assume the length of the lever arm 51 from the centre of the Servo Motor to the pivot point 56 is 1 unit in length. If the length of the lever arm 53 on the drive side is 2 units in length, and arm 54 is connected a distance 1 unit in length from the connection point 57 of arm 52 to lever arm 53, the movement of 90 degrees will be converted to 45 degrees of lever arm 53 and the force generated will be double that generated at lever 51. If the movement is now 45 degrees, the result of this gear drive is that the movement of the height adjusting ring 44 at point 55 will be the required linear axial movement.
(47) A corresponding lever arm 58 connected to height adjusting ring 44 on the opposite side of the connection of arm 54 at point 55. The lever arm 58 is connected by a common axle 59 to lever arm 53 so that rotational movement of lever arm 53 about pivot point 60 causes a corresponding rotation of lever arm 58. This provides an even and consistent directed sliding movement of height adjusting ring 44 upwards and downwards on the outside of spray valve body 42.
(48) It is expected that one or two of these valve assemblies will be used on each system shown respectively in
(49) The preferred operation of the flow rate control system according to the invention will now be described. The control system is shown in
(50) The control system comprises a controller 90 connected to a ground speed control panel or human machine interface 91 which is preferably located in the cabin of the operator and includes a display. A ground speed sensor 93 is connected to the controller 90 and provided with a means which ideally detects the position of the vehicle and relate it to the speed of the vehicle. The ground speed sensor is preferably provided with an antenna 92. The controller preferably receives input from an incline sensor 94 which inputs data relating to the incline of the slope over which the vehicle is travelling.
(51) The controller is connected to solenoids 95, 96 which actuate the pump to supply water to the conduits and also open and close the spray valves where applicable.
(52) When a variable spray valve is used, the controller also operates the servo actuator which opens and closes the variable orifice.
(53)
(54) 1. Operation of Ground Speed Spray System
(55) 1.1 The system is required to spread water on mine haulage roads at a constant rate irrespective of the ground speed. 1.2 Control of the Ground Speed Spray System will be done by means of a HMI (Human Machine Interface) device 91. A ground speed external control panel 90 provides a connection or connections to the ground speed determinant device or devices and signal to the HMI 91. All functions necessary to operate the system can be accessed through the HMI. Operation on the ground speed spray controller 90 from the HMI using the display unit 97 is shown in
2. Operation of the System in Auto Mode 2.1 The system can be used in a manner that the spread rate (by eye) is considered to be satisfactory at a maximum speed and the need would be to maintain that application rate throughout a speed range. This could be that the maximum orifice height is to be 18 or 15 mm at 40 kilometers per hour. There would be a need to consider the rate of spraying at speeds at the lower end of the speed variable range. Typical of this is that the water would stop spreading at 5 kilometers per hour. The system would work in a manner that at 5 kilometers per hour, the application rate would be zero and at 40 kilometers per hour, the application rate would be that from an orifice that is 18 or 15 mm high. The control system would change the height of the orifice proportional to the road speed. Typical of this is the orifice height would be half the height at 20 kilometers per hour. In other words, the height of the orifice reduces linearly with the speed of the vehicle from maximum speed to the minimum speed at which spraying continues. This method may be sufficient for many sites where this system is used. 2.2 In the mode of operation where an exact spread rate is required on the ground because there is an additive in the water that needs to be put down at a specific rate. Assume the water spread rate needs to be 0.25 liters per square meter. Assume the maximum speed at which the truck will be spreading is 40 kilometers per. Assume the width of spray is going to be 12.5 meters. Assume at 5 kilometers per hour that the water would stop spreading. At 40 kilometers per hour the vehicle would cover a distance of
(56)
3. Operation of the System in Manual Mode 3.1 In manual mode, power is removed from the actuator, the orifice size on the spray valve is adjusted to a particular value by means of a hand wheel on the actuator. The water and water pump are turned on and off from the control panel in the cab.
4. Alarms 4.1 Contact with satellite lost. 4.1.1 Information from the GPS transducer is fed to the controller 90 in the form of pulses. In the event the pulses stop coming into the controller 90 and GPS system has 2 or less satellites, an alarm will be sent to the HMI notifying the operator that the GPS signal is lost. 4.1.2 In the event that contact with the satellite is lost, the controller will maintain the orifice at that where it is and advise the operator to maintain speed as contact with the satellite has been lost. Graphic No xxx shows the faults that will be reported to the operator. 4.2 Excessive vehicle speed. 4.2.1 Maximum vehicle speed is a priority calculated at the set up of the system. Ground speed is measured using a GPS ground speed sensor. The point at which the ground speed becomes to high is part of the profile used to spread water on the ground. 4.2.2 In the event that the vehicle speed becomes excessive, an alarm will flash onto the HMI. This alarm will provide a message notifying the operator that he needs to slow down as the vehicle is exceeding the capabilities of the water pump. 4.3 Ground speed too low 4.3.1 In the event that ground speed becomes very low, pressure will drop to a point that the sprays will not be able to function as a spray (the water will in effect dribble out of the spray valve). The point at which the ground speed becomes too low to spread water on the ground is part of the profile used to spread water. 4.3.2 In the event the ground speed falls to a value so low that the pressure in the spray cannot generate a useful spray, an alarm will flash onto the HMI. The alarm will notify the operator that he needs to speed up the vehicle as it is approaching a point where the system will not be able to keep up with the spray requirements of the vehicle. 4.4 Alarms 4.4.1 Alarms will only function in Ground Speed Spray mode.
(57) Parts List
(58) A insert
(59) 1 pump/centrifugal pump/centrifugal water pump
(60) 2 diaphragm actuated hydraulic operated pressure reducing valve/pressure reducing valve
(61) 3 hydraulic operated pressure reducing diaphragm valve/pressure reducing valve/hydraulic operated proportional pressure reducing diaphragm valves/orifice valve
(62) 4 orifice
(63) 5 spray valve/electric motor
(64) 6 conduit
(65) 7 monitor bearing
(66) 11 pump/centrifugal pump/centrifugal water pump
(67) 12 diaphragm actuated hydraulic operated proportional pressure reducing valve/pressure reducing valve
(68) 13 hydraulic operated pressure reducing diaphragm valve/pressure reducing valve/hydraulic operated proportional pressure reducing diaphragm valves/fixed orifice spray valve/orifice spray valve/orifice valve
(69) 14 orifice
(70) 15 spray valve
(71) 16 conduit
(72) 17 monitor bearing
(73) 21 pump/centrifugal pump/centrifugal water pump
(74) 22 hydraulic actuated proportional pressure reducing diaphragm valve
(75) 23 hydraulic operated pressure reducing diaphragm valve/pressure reducing valve/hydraulic operated proportional pressure reducing diaphragm valves/spray valve/orifice spray valve
(76) 24 orifice
(77) 25 spray valve/electric motor
(78) 26 conduit
(79) 27 monitor bearing
(80) 40 variable spray valve/valve/variable orifice spray valve
(81) 41 servo actuator/servo electric rotary actuator
(82) 42 spray valve body
(83) 42A discharge orifice/orifice
(84) 43 lever mechanism
(85) 44 height adjusting ring
(86) 45 stationary deflector plate/deflector plate
(87) 46 spray valve mounting plate
(88) 51 lever arm/lever
(89) 52 actuating arm/arm
(90) 53 gear arm/lever arm
(91) 54 second actuating arm/arm
(92) 55 point
(93) 56 pivot point
(94) 57 connection point
(95) 58 lever arm
(96) 59 common axle
(97) 60 pivot point
(98) 61 mounting frame/mounting
(99) 62 throw direction adjustor/spray valve throw direction adjustor
(100) 63 servo shaft
(101) 64 bearing
(102) 65 bearing
(103) 70 water pump control valve
(104) 71 hoist pump
(105) 72 vehicle
(106) 73 hydraulic motor
(107) 74 water cannon
(108) 80 reservoir
(109) 81 conduit
(110) 82 hydraulically operated diaphragm valve
(111) 83 variable orifice spray valve
(112) 90 controller/ground speed external control panel/ground speed spray controller
(113) 91 ground speed control panel/human machine interface/human machine interface device
(114) 92 GPS antenna/antenna
(115) 93 GPS ground speed sensor/ground speed sensor/GPS speed transducer
(116) 94 incline switch/incline sensor/transducer/incline transducer
(117) 95 solenoid
(118) 96 solenoid
(119) 97 display unit
(120) 98 proportional diaphragm valve
(121) 99 variable orifice spray valve
(122) 100 diaphragm actuated hydraulic operated pressure reducing valve/pressure reducing valve/valve
(123) 102 valve body
(124) 103 diaphragm chamber
(125) 104 spring
(126) 105 pressure control valve
(127) 106 diaphragm
(128) 200 proportional pressure reducing diaphragm valve
(129) 202 valve body
(130) 203 diaphragm chamber
(131) 204 spring
(132) 205 force solenoid/solenoid
(133) 206 diaphragm
(134) 300 proportional pressure reducing diaphragm valve
(135) 302 valve body
(136) 303 diaphragm chamber
(137) 304 spring
(138) 305 proportional valve/On/Off Valve
(139) 306 pressure transducer
(140) 307 black box
(141) 308 diaphragm
(142) 400 proportional pressure reducing diaphragm valve
(143) 402 valve body
(144) 403 diaphragm chamber
(145) 404 spring
(146) 406 shutoff valve
(147) 407 pressure control valve
(148) 409 diaphragm
(149) It will be understood that the invention disclosed and defined in this specification extends to all alternative combinations of two or more of the individual features mentioned or evident from the text or drawings. All of these different combinations constitute various alternative aspects of the invention.