I Putu Gede Budisanjaya
Program Studi Teknik Pertanian dan Biosistem, Fakultas Teknologi Pertanian Universitas Udayana, Badung, Bali, Indonesia

Published : 2 Documents Claim Missing Document
Claim Missing Document
Check
Articles

Found 2 Documents
Search

Karakteristik Indeks Luas Daun Microgreen Lobak Menggunakan Pengolahan Citra Fransiska Cahyani Empang; Ni Nyoman Sulastri; I Putu Gede Budisanjaya
Jurnal BETA (Biosistem dan Teknik Pertanian) Vol 12 No 1 (2024): April
Publisher : Program Studi Teknik Pertanian dan Biosistem, Fakultas Teknologi Pertanian, Universitas Udayana, Badung, Bali, Indonesia

Show Abstract | Download Original | Original Source | Check in Google Scholar | DOI: 10.24843/JBETA.2024.v12.i01.p07

Abstract

Leaf Area Index (LAI) is a widely used parameter for determining plant biomass, including microgreens. Radish microgreens are a type of microgreens that contain vitamins and polyphenols. This study aimed to obtain LAI values of radish microgreens through image processing and to determine LAI characteristics under combinations of indoor irradiation treatments and seed densities. A Randomized Block Design with two factors was employed to determine the effect of indoor irradiation and seed density on LAI characteristics. Lighting treatments included natural light, UV LED, and Pink LED, while seed densities were 10 g/tray, 12 g/tray, and 14 g/tray. Irradiation was carried out on the second day, and images were taken on the tenth day after sowing. LAI characteristics were determined through image acquisition using a camera and image processing with Python, OpenCV library, and Visual Studio Code. Pearson correlation was used to determine the relationship between LAI values and biomass. Results of the Two-Way ANOVA test showed that the interaction between indoor irradiation treatment and seed density had no significant effect on LAI values (P > 0.05), while indoor irradiation treatment had a significant effect (P < 0.05). The highest LAI values were observed under Pink LED irradiation (0.792–0.985) with thick, wide stems covering almost the entire tray area, while the lowest LAI values were observed under UV LED irradiation (0.426–0.528) with small stems and long, narrow leaves. LAI values positively correlated with microgreen dry biomass (R² = 0.84). In summary, Pink LED irradiation produced the highest LAI values, and LAI strongly positively correlates with microgreen dry biomass.
Perancangan Sistem Kontrol pH dan Turbidity Akuarium Ni Kadek Sintya Resmiani; Ni Nyoman Sulastri Sulastri; I Made Anom Sutrisna Wijaya; I Putu Gede Budisanjaya
Jurnal BETA (Biosistem dan Teknik Pertanian) Vol 11 No 1 (2023): April
Publisher : Program Studi Teknik Pertanian dan Biosistem, Fakultas Teknologi Pertanian, Universitas Udayana, Badung, Bali, Indonesia

Show Abstract | Download Original | Original Source | Check in Google Scholar | DOI: 10.24843/JBETA.2023.v11.i01.p18

Abstract

Control systems are widely applied in various fields, including fish farming. Water quality can decrease rapidly due to the deposition of feed residues, faeces, and metabolic waste of fish. The deposition causes the phosphate concentration to elevate; as a result, the water becomes murky. In addition, significant changes in pH in a short time cause physiological disturbances for fish. Aquarium water quality plays a vital role in the maintenance of aquarium fish; therefore, a system that can control and monitor water quality in fish farming is needed. The purpose of the study was to design as well as build an aquarium pH and turbidity control system and to assess the performance of the design produced. The system was designed using Arduino Uno ATmega328P as a microcontroller. This microcontroller was connected to sensor pH E-201 BNC, sensor turbidity SEN0189, ultrasonic sensor as a water level sensor, a relay as a pump controller, solenoid valve and 16x2 LCD as a monitor. The pH and turbidity setting point was based on the optimum living condition of Koi fish, which was entered manually through coding. For this study, an aquarium prototype was built with 40 x 25 x 28 cm dimensions. The results showed that the pH sensor error values for acid, alkaline and neutral water conditions were 0,35%, 0,72%, dan 0,49%, respectively, while the accuracies were 99.65 %, 99.28%, and 99.51%, respectively. A turbidity meter was calibrated with a TDS meter. The error and the accuracy values for the ultrasonic sensor were 0,53% and 99,47%, respectively. The system was able to read and display data as well as provide output with a response time for the water draining and filling system of 6,3s and 0,14s. The system built performed well in monitoring and controlling pH and turbidity in an aquarium.