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Development and Preliminary Evaluation of an Integrated Individual Nozzle Direct Injection and Carrier Flow Rate Control System for Pesticide Applications

机译:综合单独喷嘴直喷和载体流量控制系统的开发与初步评价农药应用

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Direct injection systems for agricultural spray applications continue to present challenges in terms of commercialization and adoption by end users. Such systems have typically suffered from lag time and mixing uniformity issues, which have outweighedthe potential benefits of keeping chemical and carrier separate or reducing improper tank-mixed concentration by eliminating operator measurements. The proposed system sought to combine high-pressure direct nozzle injection with an automated variable-flow nozzle to improve chemical mixing and response times. The specific objectives were to: (1) integrate a high-pressure direct nozzle injection system with variable-flow carrier control into a prototype for testing, (2) assess the chemical metering accuracy and proper mixing at different combinations of injection valve frequency and duty cycle along with chemical pressure, and (3) assess the ability of the control system to ensure proper chemical dilutions and concentrations in the nozzle effluent resulting from step changes in target application rates. Laboratory experiments were conducted using the combined system. Results of these experiments showed that the open-loop control of the injectors could provide a means of accurately metering the chemicalconcentrate into the carrier stream. Chemical injection rates could be achieved with an average error of 5.4% compared to the target rates. Injection at higher duty cycles resulted in less error in the chemical concentration predictions. Discrete Fourier transform analysis showed that the injection frequency was noticeable in the nozzle effluent when the injector was operated at 3.04 MPa and 5 Hz (particularly at lower duty cycles). Increasing the injection pressure and operating frequency to 5.87 MPaand 7 Hz, respectively, improved mixing, as the injection frequency component was no longer noticed in the effluent samples. The variable-flow nozzle was able to maintain appropriate carrier flow rates to achieve product label chemical concentrations. Inone case, the maximum allowable concentrate was exceeded, although the nozzle was able to recover in 0.5 s. Steady-state errors rangedfrom 2.5% to 7.5% for chemical concentrations compared to the selected chemical to carrier ratio (0.03614). This test scenario represented an application rate of 4.68 L ha'1 with velocity increases from 4.0 to 7.1 m s~' and decreases from 7.1 to 4.0 m s'1, which were typical of the example field application data.
机译:用于农产品喷涂应用的直接注射系统在商业化和最终用户采用的过程中继续呈现挑战。这种系统通常遭受滞后时间和混合均匀性问题,这超过了通过消除操作员测量来保持化学和载体分离或减少不正确的罐混合浓度的潜在益处。所提出的系统试图将高压直流喷嘴注入结合自动化的可变流量喷嘴,以改善化学混合和响应时间。具体目标是:(1)将具有可变流量载体控制的高压直流喷嘴注入系统集成到用于测试的原型中,(2)评估在注射阀频率和职责的不同组合中的化学计量精度和适当的混合与化学压力一起循环,(3)评估控制系统的能力,以确保采用靶申请率的步骤变化所产生的喷嘴流出物的适当化学稀释和浓度。使用组合系统进行实验室实验。这些实验的结果表明,喷射器的开环控制可以提供准确地计量化学加速器进入载体流的方法。与目标速率相比,可以实现化学喷射率5.4%的平均误差。在较高占空比下注射导致化学浓度预测中的误差较少。离散的傅立叶变换分析表明,当喷射器在3.04MPa和5Hz(特别是在较低占空比下)时,喷嘴流出物中的喷射频率在喷嘴流出物中显着。将注射压力和工作频率增加到5.87mPaAnd 7 Hz,改善混合,因为在流出物样品中不再注意到注射频率分量。可变流量喷嘴能够保持适当的载流速以实现产物标签化学浓度。虽然喷嘴能够在0.5秒内恢复,但是超过壳体,超过允许浓缩物。与所选化学品相比,稳态误差范围为2.5%至7.5%,与所选化学品到载体比(0.03614)。该测试场景表示4.68 L Ha'1的速度速度从4.0到7.1 m s〜'增加,并且从7.1到4.0 m s'1减少,这是典型的示例现场应用程序数据。

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