Device and method for detecting blockages in an agricultural sprayer
10219506 ยท 2019-03-05
Assignee
Inventors
Cpc classification
A01M7/005
HUMAN NECESSITIES
B05B12/006
PERFORMING OPERATIONS; TRANSPORTING
B05B12/008
PERFORMING OPERATIONS; TRANSPORTING
B05B15/50
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
An agricultural sprayer arrangement includes a chassis, at least one ground engaging traction member carried by the chassis, a liquid tank carried by the chassis, a boom carried by the chassis, a fluid conduit associated with the boom that is fluidly connected to the liquid tank, a spray nozzle that is fluidly connected to the fluid conduit and includes a nozzle body, a differential pressure sensor with a first pressure sensor in the fluid conduit associated with the spray nozzle and a second pressure sensor in the nozzle body, and an electrical processing circuit coupled to the differential pressure sensor. The differential pressure sensor is configured to output a pressure difference signal and the electrical processing circuit is configured to report a blocked nozzle when the pressure difference signal is less than a predetermined threshold value.
Claims
1. An agricultural sprayer arrangement, comprising: a chassis; at least one ground engaging traction member carried by said chassis; a liquid tank carried by said chassis; a boom carried by said chassis; a fluid conduit associated with said boom and fluidly connected to said liquid tank; a plurality of spray nozzles spaced-apart from each other and positioned on the fluid conduit and fluidly connected in parallel to said fluid conduit, each spray nozzle of the plurality of spray nozzles including a nozzle body; a first pressure sensor having a first tube positioned in the nozzle body to measure pressure therein; and a second pressure sensor having a second tube positioned downstream of the nozzle body in the fluid conduit to measure fluid pressure in the fluid conduit such that the second tube of the second pressure sensor in the fluid conduit is positioned at a location that is half-way between the spray nozzle to which the first pressure sensor is positioned and a next downstream spray nozzle to measure the fluid pressure therein, the first pressure sensor and the second pressure sensor fluidly connected to a differential pressure sensor configured to output a pressure difference signal, wherein when the nozzle body of each spray nozzle is not clogged, the flow rate of the first pressure sensor is lower relative to the flow rate in the fluid conduit measured by the second pressure sensor and the differential pressure sensor outputs a higher voltage, and wherein when the nozzle body of each spray nozzle is clogged, the flow rate of the first pressure sensor is higher relative to the flow rate in the fluid conduit measured by the second pressure sensor and the differential pressure sensor outputs a lower voltage, and an electrical processing circuit coupled to said differential pressure sensor, said electrical processing circuit configured to report a blocked nozzle when said pressure difference signal is less than a predetermined threshold value.
2. The sprayer arrangement according to claim 1, wherein said electrical processing circuit includes a control circuit coupled to said differential pressure sensor, a timing circuit coupled to said control circuit and configured to generate a clock signal and a multi-channel display coupled to said control circuit.
3. The sprayer arrangement according to claim 2, wherein said control circuit includes a multiplexer coupled to said differential pressure sensor and said timing circuit, an amplifier coupled to said multiplexer, a filter coupled to said amplifier, and a de-multiplexer coupled to said filter, said timing circuit and said multi-channel display.
4. The sprayer arrangement according to claim 2, wherein said multi-channel display is configured to display a reported blockage to a user.
5. The sprayer arrangement according to claim 1, wherein said fluid conduit has a conduit diameter and said spray nozzle includes an inlet through said fluid conduit having an inlet diameter, said inlet diameter being smaller than said conduit diameter.
6. The sprayer arrangement according to claim 5, wherein said second pressure sensor is placed within said nozzle body adjacent to said inlet.
7. The sprayer arrangement according to claim 1, wherein the electrical processing circuit is configured, for each spray nozzle of the plurality of spray nozzles, to issue a first alarm when said pressure difference signal is less than a first predetermined threshold value and to issue a second alarm, different from the first alarm, when said pressure difference signal is less than a second predetermined threshold value and greater than the first predetermined threshold value.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The above-mentioned and other features and advantages of this invention, and the manner of attaining them, will become more apparent and the invention will be better understood by reference to the following description of an embodiment of the invention taken in conjunction with the accompanying drawings, wherein:
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(9) Corresponding reference characters indicate corresponding parts throughout the several views. The exemplification set out herein illustrates one embodiment of the invention and such exemplification is not to be construed as limiting the scope of the invention in any manner.
DETAILED DESCRIPTION OF THE INVENTION
(10) Referring now to the drawings, and more particularly to
(11) Agricultural sprayer 10 includes a chassis 16 to which a pair of wing booms 18, 20 are connected, united by a center boom 19. For sake of description, wing boom 18 is considered a left wing boom and wing boom 20 is considered a right wing boom. The wing booms 18, 20 are connected to center boom 19, joined about respective pivot connections 22, 24. Center boom 19 is connected at or near the rear of chassis 16. The wing booms 18, 20 are designed to fold forward toward the leading end of chassis 16 when wing booms 18, 20 are moved from an extended position, shown in
(12) Each wing boom 18, 20 supports a number of boom sections 18A, 18B, 18C, 20A, 20B and 20C. Center boom 19 and wing boom sections 18A, 18B, 18C, 20A, 20B and 20C each include a number of spray nozzles (shown in
(13) Referring now to
(14) A differential pressure sensor 52 is included in the sprayer arrangement according to the present invention. The differential pressure sensor 52 has a first tube 54 that is placed within the nozzle body 46 of spray nozzle 44A and a second tube 56 placed in the fluid flow within the fluid conduit 38. First tube 54 is part of a first pressure sensor 53 and second tube 56 is part of a second pressure sensor 55. The first pressure sensor 53 and second pressure sensor 55 are both part of the differential pressure sensor 52. Although only one differential pressure sensor 52 is shown with tube 54 placed in the nozzle body 46 and tube 56 placed in the fluid flow within the fluid conduit 38, each spray nozzle 44A, 44B, 44C and 44D could have an associated differential pressure sensor with one tube in the spray nozzle's body and the other tube in the fluid flow within the fluid conduit 38 near the spray nozzle. It is useful for tubes 54 and 56 to be flexible, but they can also be rigid if desired. Tube 54 provides fluid from the nozzle body 46 to the first pressure sensor 53 with first local pressure P1 and tube 56 provides fluid from the fluid conduit 38 to the second pressure sensor 55 with second local pressure P2. The differential pressure sensor 52 compares the first local pressure P1 to the second local pressure P2 to determine a pressure difference PD, which can be output as a pressure difference signal by the differential pressure sensor 52.
(15) The fluid conduit 38 has a diameter that is significantly larger than the diameter of the inlet 46. In this regard, fluid that flows into the spray nozzle 44A through the inlet 46 will be similar to fluid flowing through a constricted section of a pipe. The different values between the first local pressure P1 and the second local pressure P2 when the spray nozzle 44A is in an unclogged state is therefore directly proportional to the flow rate of the fluid in the fluid conduit 38. As shown in
(16) Referring now to
(17) The multi-channel display 76 can alert a user to a potentially clogged spray nozzle in a variety of ways. For example, the multi-channel display 76 could have an LED (not shown) connected to each pathway of the de-multiplexer 68. If the pressure difference signal through one of the pathways does not have a high enough voltage, signifying a low pressure difference PD and possible blockage in a spray nozzle, the associated LED could turn off. A turned off LED could be visually seen by an operator and alert the operator that a particular spray nozzle might be clogged. The voltage required to keep an LED actively lit could therefore act as a predetermined threshold to indicate whether a spray nozzle is clogged or not. Other predetermined thresholds could also be chosen, such as a setting in the multi-channel display 76 to issue an alarm if the pressure difference signal is below a certain voltage. It is also contemplated that the predetermined threshold could be a certain signal frequency, with a pressure difference signal above or below the predetermined frequency indicating a blockage in the spray nozzle. More elaborate methods of alerting an operator to a clogged spray nozzle, such as an alarm sound or visual warning, are also contemplated as being used. The multi-channel display 76 can include a processing unit and a memory that stores the predetermined threshold value(s), with the processing unit analyzing whether the received amplified pressure difference signal(s) meets the predetermined threshold conditions and then determining whether to issue an alarm. In such a configuration, the predetermined threshold values can be either set into the memory or adjustable by an operator.
(18) Referring now to
(19) While this invention has been described with respect to at least one embodiment, the present invention can be further modified within the spirit and scope of this disclosure. This application is therefore intended to cover any variations, uses, or adaptations of the invention using its general principles. Further, this application is intended to cover such departures from the present disclosure as come within known or customary practice in the art to which this invention pertains and which fall within the limits of the appended claims.