Effects of Temperatures and Viscosity of the Hydraulic Oils on the Proportional Valve for a Rice Transplanter Based on PID Control Algorithm

This study was conducted to develop a proportional-integral-derivative (PID) control algorithm considering viscosity for the planting depth control system of a rice transplanter using various hydraulic oils at different temperatures and to evaluate the performance of the control algorithm, and compa...

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Main Authors: Md. Abu Ayub Siddique, Wan-Soo Kim, Yeon-Soo Kim, Taek-Jin Kim, Chang-Hyun Choi, Hyo-Jai Lee, Sun-Ok Chung, Yong-Joo Kim
Format: Article
Language:English
Published: MDPI AG 2020-03-01
Series:Agriculture
Subjects:
Online Access:https://www.mdpi.com/2077-0472/10/3/73
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spelling doaj-6c3c94f6ff604561b3622909eca848f12021-04-02T10:10:19ZengMDPI AGAgriculture2077-04722020-03-011037310.3390/agriculture10030073agriculture10030073Effects of Temperatures and Viscosity of the Hydraulic Oils on the Proportional Valve for a Rice Transplanter Based on PID Control AlgorithmMd. Abu Ayub Siddique0Wan-Soo Kim1Yeon-Soo Kim2Taek-Jin Kim3Chang-Hyun Choi4Hyo-Jai Lee5Sun-Ok Chung6Yong-Joo Kim7Department of Biosystems Machinery Engineering, Chungnam National University, Daejeon 34134, KoreaDepartment of Biosystems Machinery Engineering, Chungnam National University, Daejeon 34134, KoreaDepartment of Biosystems Machinery Engineering, Chungnam National University, Daejeon 34134, KoreaDepartment of Biosystems Machinery Engineering, Chungnam National University, Daejeon 34134, KoreaDepartment of Bio-Mechatronics Engineering, Sungkyunkwan University, Suwon 16419, KoreaDepartment of Bio-Industry Mechanical Engineering, College of Industrial Science, Kongju National University, Chungnam 32439, KoreaDepartment of Biosystems Machinery Engineering, Chungnam National University, Daejeon 34134, KoreaDepartment of Biosystems Machinery Engineering, Chungnam National University, Daejeon 34134, KoreaThis study was conducted to develop a proportional-integral-derivative (PID) control algorithm considering viscosity for the planting depth control system of a rice transplanter using various hydraulic oils at different temperatures and to evaluate the performance of the control algorithm, and compare the performance of the PID control algorithm without considering viscosity and considering viscosity. In this study, the simulation model of the planting depth control system and a PID control algorithm were developed based on the power flow of the rice transplanter (ERP60DS). The primary PID coefficients were determined using the Ziegler-Nichols (Z-N) second method. Routh’s stability criteria were applied to optimize the coefficients. The pole and double zero points of the PID controller were also applied to minimize the sustained oscillations of the responses. The performance of the PID control algorithm was evaluated for three ISO (The International Organization for Standardization) standard viscosity grade (VG) hydraulic oils (VG 32, 46, and 68). The response characteristics were analyzed using statistical method (ANOVA) and Duncan’s multiple range test (DMRT) at a significant level of 0.05 were performed through the statistical software SPSS. The results show that the control algorithm considering viscosity is able to control the pressure of the proportional valve, which is associated with the actuator displacement for various types of hydraulic oils. It was noticed that the maximum pressure was 15.405 bars at 0, 20, 40, 60, 80, and 100 °C for all of the hydraulic oils. The settling time and steady-state errors were 0.45 s at 100 °C for VG 32 and 0% for all of the conditions. The maximum overshoots were found to be 17.50% at 100 °C for VG 32. On the other hand, the PID control algorithm without considering viscosity could not control the planting depth, because the response was slow and did not satisfy the boundary conditions. The PID control algorithm considering viscosity could sufficiently compensate for the nonlinearity of the hydraulic system and was able to perform for any of temperature-dependent viscosity of the hydraulic oils. In addition, the rice transplanter requires a faster response for accurately controlling and maintaining the planting depth. Planting depth is highly associated with actuator displacement. Finally, this control algorithm considering viscosity could be helpful in minimizing the tilting of the seedlings planted using the rice transplanter. Ultimately, it would improve the transplanter performance.https://www.mdpi.com/2077-0472/10/3/73transplanterhydraulic oiltemperatureviscosityproportional valve
collection DOAJ
language English
format Article
sources DOAJ
author Md. Abu Ayub Siddique
Wan-Soo Kim
Yeon-Soo Kim
Taek-Jin Kim
Chang-Hyun Choi
Hyo-Jai Lee
Sun-Ok Chung
Yong-Joo Kim
spellingShingle Md. Abu Ayub Siddique
Wan-Soo Kim
Yeon-Soo Kim
Taek-Jin Kim
Chang-Hyun Choi
Hyo-Jai Lee
Sun-Ok Chung
Yong-Joo Kim
Effects of Temperatures and Viscosity of the Hydraulic Oils on the Proportional Valve for a Rice Transplanter Based on PID Control Algorithm
Agriculture
transplanter
hydraulic oil
temperature
viscosity
proportional valve
author_facet Md. Abu Ayub Siddique
Wan-Soo Kim
Yeon-Soo Kim
Taek-Jin Kim
Chang-Hyun Choi
Hyo-Jai Lee
Sun-Ok Chung
Yong-Joo Kim
author_sort Md. Abu Ayub Siddique
title Effects of Temperatures and Viscosity of the Hydraulic Oils on the Proportional Valve for a Rice Transplanter Based on PID Control Algorithm
title_short Effects of Temperatures and Viscosity of the Hydraulic Oils on the Proportional Valve for a Rice Transplanter Based on PID Control Algorithm
title_full Effects of Temperatures and Viscosity of the Hydraulic Oils on the Proportional Valve for a Rice Transplanter Based on PID Control Algorithm
title_fullStr Effects of Temperatures and Viscosity of the Hydraulic Oils on the Proportional Valve for a Rice Transplanter Based on PID Control Algorithm
title_full_unstemmed Effects of Temperatures and Viscosity of the Hydraulic Oils on the Proportional Valve for a Rice Transplanter Based on PID Control Algorithm
title_sort effects of temperatures and viscosity of the hydraulic oils on the proportional valve for a rice transplanter based on pid control algorithm
publisher MDPI AG
series Agriculture
issn 2077-0472
publishDate 2020-03-01
description This study was conducted to develop a proportional-integral-derivative (PID) control algorithm considering viscosity for the planting depth control system of a rice transplanter using various hydraulic oils at different temperatures and to evaluate the performance of the control algorithm, and compare the performance of the PID control algorithm without considering viscosity and considering viscosity. In this study, the simulation model of the planting depth control system and a PID control algorithm were developed based on the power flow of the rice transplanter (ERP60DS). The primary PID coefficients were determined using the Ziegler-Nichols (Z-N) second method. Routh’s stability criteria were applied to optimize the coefficients. The pole and double zero points of the PID controller were also applied to minimize the sustained oscillations of the responses. The performance of the PID control algorithm was evaluated for three ISO (The International Organization for Standardization) standard viscosity grade (VG) hydraulic oils (VG 32, 46, and 68). The response characteristics were analyzed using statistical method (ANOVA) and Duncan’s multiple range test (DMRT) at a significant level of 0.05 were performed through the statistical software SPSS. The results show that the control algorithm considering viscosity is able to control the pressure of the proportional valve, which is associated with the actuator displacement for various types of hydraulic oils. It was noticed that the maximum pressure was 15.405 bars at 0, 20, 40, 60, 80, and 100 °C for all of the hydraulic oils. The settling time and steady-state errors were 0.45 s at 100 °C for VG 32 and 0% for all of the conditions. The maximum overshoots were found to be 17.50% at 100 °C for VG 32. On the other hand, the PID control algorithm without considering viscosity could not control the planting depth, because the response was slow and did not satisfy the boundary conditions. The PID control algorithm considering viscosity could sufficiently compensate for the nonlinearity of the hydraulic system and was able to perform for any of temperature-dependent viscosity of the hydraulic oils. In addition, the rice transplanter requires a faster response for accurately controlling and maintaining the planting depth. Planting depth is highly associated with actuator displacement. Finally, this control algorithm considering viscosity could be helpful in minimizing the tilting of the seedlings planted using the rice transplanter. Ultimately, it would improve the transplanter performance.
topic transplanter
hydraulic oil
temperature
viscosity
proportional valve
url https://www.mdpi.com/2077-0472/10/3/73
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