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PRESSURE DYNAMICS OF A SPRAY NOZZLE UNDER PULSE-WIDTH MODULATION CONTROL

Research output: Contribution to journalArticlepeer-review

1 Scopus citations

Abstract

Nozzle pressure uniformity is one of the most critical indicators of sprayer performance. Pulse-width modulation (PWM) sprayer control systems adjust average flow by rapidly cycling a solenoid valve on and off. The changes in pressure supplied to the nozzle body result in higher-order pressure dynamics that lead to less-than-ideal pressure uniformity at the nozzle tip. This research focused on measuring actual nozzle pressure dynamics and modeling nozzle pressure as a function of upstream pressure before the solenoid valve and the PWM control signal. The experiments were conducted in a laboratory test environment using a single spray nozzle to collect the nozzle pressure data under seven nozzle orifice sizes, five system pressures, and three PWM duty cycles at a 10 Hz operating frequency. The system identification toolbox in MATLAB was used to obtain transfer function models that represent the nozzle pressure dynamics under different treatment combinations. The results showed that the damping ratio (ζ) depends on orifice size, whereas the natural frequency (ωn) depends on orifice size and nominal system pressure. The wide range of ζ values under various nozzle orifice sizes resulted in high variation in maximum overshoot (Mp) above the target pressure. Settling times (ts) were longer for the smallest and largest nozzle orifice sizes due to low ωn. Results also showed that nozzle orifice size and nominal pressure substantially impacted rise time (tr), which had a direct inverse relationship. Further statistical analysis showed that orifice size and nominal system pressure had a significant effect on mean ζ and ωn—largely at smaller orifice sizes and lower nominal system pressures. Therefore, it is important to select the optimal input parameters that yield adequately fast and damped system pressure dynamics to ensure an accurate application rate with the desired droplet size distribution.

Original languageEnglish
Pages (from-to)619-632
Number of pages14
JournalJournal of the ASABE
Volume68
Issue number4
DOIs
StatePublished - 2025

Bibliographical note

Publisher Copyright:
© 2025 American Society of Agricultural and Biological Engineers.

Funding

This work was supported by the USDA National Institute of Food and Agriculture under grant number 2017-67021-26250.

FundersFunder number
US Department of Agriculture National Institute of Food and Agriculture, Agriculture and Food Research Initiative2017-67021-26250

    Keywords

    • Modeling
    • Precision agriculture
    • Pulse-width modulation
    • Spray nozzle
    • Transient pressure response

    ASJC Scopus subject areas

    • Forestry
    • Food Science
    • Biomedical Engineering
    • Agronomy and Crop Science
    • Soil Science

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