{"title":"Substantiation of the design and technological parameters of a multi-fan sprayer module","authors":"L. A. Marchenko, I. G. Smirnov, A. Yu. Spiridonov","doi":"10.22314/2073-7599-2023-17-3-27-33","DOIUrl":null,"url":null,"abstract":"Currently, precision gardening necessitates the use of robotic universal platforms featuring modular multi-fan sprayers, typically equipped with 4-6 fans. As new technologies emerge, the demands placed on spraying ventilation systems are also evolving. (Research purpose) The objective of this research is to establish the design and technological specifications of the multi-fan sprayer module. (Materials and methods) The research is grounded on fundamental equations of energy and mass conservation in the field of applied gas dynamics, specifically the Bernoulli equation and the flow continuity equation. To analyze the pressure distribution within the fan duct and calculate the gas jet, a specific methodology was employed in this research. Additionally, the research utilizes analytical expressions and industry standards to determine universal parameters and dimensions of fans and liquid atomizers. (Results and discussion) Theoretical calculations were performed to determine the main parameters. The results are as follows: the air consumption required to cover a given crown volume is 11.28 cubic meters per second; the air consumption by one fan is 1.88 cubic meters per second; the air flow rate at the fan outlet reaches 17.9 meters per second; pressure generated by the fan is 192.25 pascals; power required to drive one fan is 0.170 kilowatts; the installed power of the fan motor is 0.204 kilowatts; the jet initial section length is 1.53 meters; the axial jet velocity is 13.6 meters per second; the air consumption is 12.84 cubic meters per second; the round jet diameter is 1.58 meters. (Conclusions) The technological scheme of a multi-fan sprayer has been developed and justified. Calculation equations have been proposed to determine the distribution of static, dynamic, and total pressure in different sections of the sprayer fan. An algorithm for calculating the parameters of the sprayer module has been presented. The numerical values of the parameters for the multi-fan sprayer module have been determined for specific operating conditions.","PeriodicalId":32503,"journal":{"name":"Sel''skokhoziaistvennye mashiny i tekhnologii","volume":"15 1","pages":"0"},"PeriodicalIF":0.0000,"publicationDate":"2023-09-20","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Sel''skokhoziaistvennye mashiny i tekhnologii","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/10.22314/2073-7599-2023-17-3-27-33","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"","JCRName":"","Score":null,"Total":0}
引用次数: 0
Abstract
Currently, precision gardening necessitates the use of robotic universal platforms featuring modular multi-fan sprayers, typically equipped with 4-6 fans. As new technologies emerge, the demands placed on spraying ventilation systems are also evolving. (Research purpose) The objective of this research is to establish the design and technological specifications of the multi-fan sprayer module. (Materials and methods) The research is grounded on fundamental equations of energy and mass conservation in the field of applied gas dynamics, specifically the Bernoulli equation and the flow continuity equation. To analyze the pressure distribution within the fan duct and calculate the gas jet, a specific methodology was employed in this research. Additionally, the research utilizes analytical expressions and industry standards to determine universal parameters and dimensions of fans and liquid atomizers. (Results and discussion) Theoretical calculations were performed to determine the main parameters. The results are as follows: the air consumption required to cover a given crown volume is 11.28 cubic meters per second; the air consumption by one fan is 1.88 cubic meters per second; the air flow rate at the fan outlet reaches 17.9 meters per second; pressure generated by the fan is 192.25 pascals; power required to drive one fan is 0.170 kilowatts; the installed power of the fan motor is 0.204 kilowatts; the jet initial section length is 1.53 meters; the axial jet velocity is 13.6 meters per second; the air consumption is 12.84 cubic meters per second; the round jet diameter is 1.58 meters. (Conclusions) The technological scheme of a multi-fan sprayer has been developed and justified. Calculation equations have been proposed to determine the distribution of static, dynamic, and total pressure in different sections of the sprayer fan. An algorithm for calculating the parameters of the sprayer module has been presented. The numerical values of the parameters for the multi-fan sprayer module have been determined for specific operating conditions.
目前,精密园艺需要使用具有模块化多风扇喷雾器的机器人通用平台,通常配备4-6个风扇。随着新技术的出现,对喷雾通风系统的要求也在不断发展。(研究目的)本研究的目的是建立多风扇喷雾器模块的设计和技术规范。(材料与方法)本研究以应用气体动力学中能量和质量守恒的基本方程为基础,特别是伯努利方程和流动连续性方程。为了分析风机风道内的压力分布和计算燃气射流,本研究采用了一种特殊的方法。此外,研究利用解析表达式和行业标准确定风扇和液体雾化器的通用参数和尺寸。(结果与讨论)通过理论计算确定了主要参数。结果表明:覆盖给定树冠体积所需的空气消耗量为11.28立方米/秒;一台风机的耗气量为1.88立方米/秒;风机出口气流流速达到17.9米/秒;风机产生的压力为192.25帕斯卡;驱动一台风扇所需功率为0.170千瓦;风机电机装机功率0.204千瓦;射流初始截面长度为1.53 m;轴向射流速度为13.6 m / s;耗气量为12.84立方米/秒;圆形射流直径为1.58米。(结论)研制并论证了多扇喷雾器的工艺方案。提出了确定喷雾风机不同截面的静压、动压和总压分布的计算公式。提出了一种计算喷雾器模块参数的算法。根据具体的工况,确定了多风机喷雾器模块的参数数值。