Interactive liquid spraying system and method
10518284 ยท 2019-12-31
Assignee
Inventors
- Bradley R. Thurow (Fargo, ND, US)
- Paul A. Nystuen (West Fargo, ND, US)
- Barry D. Batcheller (West Fargo, ND)
Cpc classification
G01F1/667
PHYSICS
A01M7/0042
HUMAN NECESSITIES
B05B12/008
PERFORMING OPERATIONS; TRANSPORTING
B05B1/3046
PERFORMING OPERATIONS; TRANSPORTING
B05B1/12
PERFORMING OPERATIONS; TRANSPORTING
International classification
B05B12/00
PERFORMING OPERATIONS; TRANSPORTING
A01C23/00
HUMAN NECESSITIES
A01M7/00
HUMAN NECESSITIES
B05B12/08
PERFORMING OPERATIONS; TRANSPORTING
B05B1/30
PERFORMING OPERATIONS; TRANSPORTING
B05B1/12
PERFORMING OPERATIONS; TRANSPORTING
Abstract
An intelligent spray nozzle, comprising an input pressure sensor, a flow rate sensor, a flow modulator, a nozzle pressure sensor, a linear actuator, and an output orifice modulator, wherein an input pressure read from the input pressure sensor and a flow rate read from the flow rate sensor are used as inputs by the flow modulator to drive the at least one linear actuator to control an output spray rate from the intelligent spray nozzle, and wherein a nozzle pressure read from the nozzle pressure sensor is used as feedback for the output orifice modulator, wherein an output orifice is modified by the output orifice modulator to achieve optimal output spray.
Claims
1. An interactive liquid spraying system, which comprises: a fluid source adapted for containing a quantity of spraying liquid; a pump with an inlet connected to the fluid source; a flow conduit connected to the pump; an input pressure sensor connected to said flow conduit; a flow sensor connected to said flow conduit; a nozzle body connected to the flow conduit, the nozzle body forming and including a nozzle outlet, wherein internal to the nozzle body and upstream from the nozzle outlet, the nozzle body has a flow control opening in the nozzle body with a flow control feature shaped to interact with the flow control opening, the flow control feature being adjustably received in the flow control opening to influence a flow of liquid through the flow control opening, said nozzle body further including an orifice opening located downstream from said flow control opening and immediately adjacent the nozzle outlet, with an orifice shape feature shaped to interact with the orifice opening, the orifice shape feature being adjustably received in the orifice opening to influence a flow of liquid through the orifice opening and enabling flow control and spray pattern shaping; an actuator having a plunger shaft, the plunger shaft being connected to said flow control feature and to said orifice shape feature, wherein the actuator is configured to simultaneously extend said flow control feature into said flow control opening and to extend said orifice shape feature into said orifice opening, or to simultaneously retract said flow control feature out of said flow control opening and to retract said orifice shape feature out of said orifice opening; and a microprocessor connected to said input pressure sensor, said flow sensor and said actuator, said microprocessor configured to actuate said actuator in response to a predetermined fluid pressure sensed by said input pressure sensor and a predetermined flow conditions sensed by flow sensor, wherein the microprocessor controls the actuator for extending and retracting said flow control feature relative to said flow control opening and for extending and retracting said orifice shape feature relative to said orifice opening to adjust a spray pattern from said nozzle outlet.
2. The spraying system according to claim 1, which includes a flow modulator connected to said flow conduit and configured for modulating a fluid flow through said nozzle body.
3. The spraying system according to claim 2, which includes an output orifice modulator in said nozzle body, said output orifice modulator configured for adjusting said orifice opening with said orifice shape feature and said at least one actuator.
4. The spraying system according to claim 2, which includes: a fluid inlet connected to said flow conduit and said nozzle body; and said fluid inlet mounting said at least one actuator and said flow control feature.
5. The spraying system according to claim 1, which includes: said flow conduit including an enlarged section located between said pump and said nozzle body; an ultrasonic transducer mounted on said conduit enlarged section; an ultrasonic receiver mounted on said conduit and large section and oriented to receive ultrasonic transmissions from said ultrasonic transducer; said ultrasonic receiver configured for generating signals representing fluid flow in said conduit enlarged section; and said microprocessor being connected to said ultrasonic receiver and programmed for controlling said spraying system in response to said fluid flow representative signals.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1) The drawings constitute a part of this specification and include exemplary embodiments of the present invention illustrating various objects and features thereof.
(2)
(3)
(4)
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
I. Introduction and Environment
(5) As required, detailed aspects of the present invention are disclosed herein, however, it is to be understood that the disclosed aspects are merely exemplary of the invention, which may be embodied in various forms. Therefore, specific structural and functional details disclosed herein are not to be interpreted as limiting, but merely as a basis for the claims and as a representative basis for teaching one skilled in the art how to variously employ the present invention in virtually any appropriately detailed structure.
(6) Certain terminology will be used in the following description for convenience in reference only and will not be limiting. For example, up, down, front, back, right and left refer to the invention as orientated in the view being referred to. The words, inwardly and outwardly refer to directions toward and away from, respectively, the geometric center of the aspect being described and designated parts thereof. Forwardly and rearwardly are generally in reference to the direction of travel, if appropriate. Said terminology will include the words specifically mentioned, derivatives thereof and words of similar meaning.
II. Preferred Embodiment Interactive Liquid Spraying System 2
(7) With reference to the drawings, an interactive liquid spraying system 2 is described.
(8) In general, the overall aspects of the invention, which is an interactive liquid spraying system 2, are as follows: Spray nozzles 4 (
(9)
(10) This information (the input pressure and flow rate) is passed into the flow modulator module 16, which uses the sensor information as well as the user-defined or pre-defined desired application rate and, optionally, environmental information (wind, weather, etc.) to determine the proper way to drive the linear actuator 20 which will control the size and shape of the output orifice opening 30 (through the output orifice modulator 22). The liquid 26 will also flow past a nozzle pressure sensor 18 and the information obtained (the pressure of the fluid inside the nozzle body 32) will also be used by the output orifice modulator 22 to determine the best shape for the output orifice opening.
(11) The size and shape of the output orifice opening 30 will be modulated to help determine the pressure of the spray output and its shape and pattern, and it will also have an effect on droplet size.
(12)
(13) Fluid 26 enters the nozzle through the fluid input or inlet 10, which includes a suitable pump for pumping the fluid 26 from the fluid source 28 through the system 2. The fluid 26 then flows through a flow control opening 36 toward the orifice opening 30. The amount of fluid 26 passing through the flow control opening 36 (the flow rate of the fluid) can be controlled by a flow control feature 34, which can be raised and lowered by the actuator 20 such that it moves either out of or farther into the flow control opening 36 via a connecting rod and return spring subassembly 21, reducing the amount of fluid 26 that can flow through the flow control opening 36 at a given time. The actuator 20 is driven by commands from the flow modulator 16 (see
(14) Once the fluid 26 flows through the flow control opening 36, it flows into the orifice opening 30 where it will exit the nozzle 4 through the nozzle outlet 24. An orifice shape feature 38 is controlled by the actuator 20 via a plunger shaft 40 connection such that the orifice shape feature 38 moves into and out of the orifice opening 30, whereby the orifice shape feature 38 opens or closes the orifice opening 30 by changing its size and shape of the orifice, thus functioning as a flow control valve controlling the spray pattern and flow rate.
(15) Ideally, both the flow control feature 34 and the orifice shape feature 38 can be moved using a single actuator 20, connected via a common plunger shaft 40. In alternate embodiments, however, the orifice shape feature 38 can move independently of the flow control feature 34, and two or more actuators 20 can be used in these embodiments.
(16) The control of fluid 26 flow through the flow control opening 36 and the shape and size of the orifice opening 30 will ultimately create the shape and behavior of the spray pattern 42 emerging from the spray output or nozzle outlet 24.
(17)
(18) A pressure transducer 46 is introduced in the wall of the flow conduit 44 or embedded inside the conduit, and it senses the pressure of the fluid 26 in the conduit 44. An enlarged section 48 of the flow conduit 44 bulges out such that conduit walls 50 that are more or less perpendicular to the flow of fluid are created, and a chamber 52 for measuring fluid flow is created. At one end of the enlarged section 48 of conduit, an ultrasonic transducer 54 is placed, and an ultrasonic receiver 56 is placed at an opposite end of the enlarged section 48. The ultrasonic transducer 54 emits waves of ultrasonic energy which are detected by an ultrasonic receiver 56.
(19) Measuring the flow rate of a fluid using ultrasonic energy is well known. The time of flight of the ultrasonic energy to move from transducer to receiver is measured in still water and then again in flowing water, and the change in time of flight between the two helps determine the flow rate.
(20) In addition to using the ultrasonic energy to measure the flow rate, it may be used to determine whether the proper amount of chemical is added to a mixture. For example, the time of flight for ultrasonic energy to move a known distance in pure, still water is known. If a known chemical (with its own known time of flight values) is introduced into the water, and then the time of flight in the still mixture is measured, and the difference measured between the new rate and that of pure water can be used to measure the amount of chemical that was introduced into the pure water. Once this mixture is determined, additional chemicals can be introduced one at a time in the same manner, using the changing time of flight to determine the amounts of any new chemicals introduced.
(21) Additional features and alternate embodiments are possible without deviating from the intent of the inventive concept described here. Some of these ideas are captured in the Appendix to this specification, which contains selected slides with notes on design options.
(22) The examples shown in the figures and described above are intended to be exemplary only and are not meant to be limiting in any way.