4 research outputs found

    Design Prototype of Temperature and Humidity Control and Monitoring on Weaver Ant Cage based on Internet of Things

    Get PDF
    Increasing market demand cannot meet the needs of the community, especially in the rainy season, because Kroto produced by weaver ants is of low quality and hard to find. Modern Kroto cultivation has many advantages compared to traditional searching in nature. The quality and quantity of Kroto lie in maintaining the temperature and humidity for weaver ants. The challenge is how to maintain the temperature and humidity inside the artificial nest of weaver ants. To help overcome the problems of modern weaver ant cultivation, we design and develop automated devices based on the Internet of Things (IoT) to control and monitor temperature and humidity for weaver ant culture. We chose the limitation of temperature is in between 25 oC – 31 oC, and the humidity range is on the level 65% - 85%. We used NodeMCU as the mainboard, DHT22 as temperature and humidity sensor, Cayenne webserver as IoT platform, and fan, humidifier, and heater for the tools to control the environment. We had conducted four tests scenario, which are sensor calibration, relay testing, actuator time testing, and delay testing. The result in temperature reading shows good accuracy while the humidity performs a huge gap of error. The humidity needs to be adjusted with the linear regression formula. Based on the relay testing, the device works perfectly fine to control the heater, the humidifier, and the fan. According to the actuator timing testing, the humidifier has the quickest time to make more humid and soothing conditions, around 5 – 15 minutes. In contrast, the heater actuator needs a longer time to heat up the room. Depends on the temperature, it needs around 5 – 31 minutes. The longest time was during the fan actuator to cool down the room, around 30 – 90 minutes. The average delay of the IoT system is 200,01 ms and is categorized as good performance based on standard TIPHON

    IoT based control system for energy saving in workplaces

    Get PDF
    “An interconnected world”, defined by the implementation of comprehensive smart technologies. Because of the rapid advancements in information and communication technology, including the use of Internet of Things (IoT) systems, a new term has emerged. The Internet of Things is a comprehensive network made up of many components that are interconnected with each other. The system, which consists of several modules, sensors, and computers, directly transmits data and performs predefined operations. The COVID-19 pandemic caused chaos in the organization in ways never felt before. Although many individuals across the global economy continue to work remotely, working life will look different as we move to a work -at -home system. A large number of organizations are looking for technologies that allow the Internet of Things to improve the environment more securely and reduce spending costs as companies strive to collect and improve revenue that has been lost by the epidemic. Smart office systems have been integrated in our vision to increase the efficiency of a building or workplace while reducing electricity consumption. So here we have created a better control system in the office that can be done by using microcontroller (ESP32) acting as a controller and regulator of data input from the sensors. Part of our methodology is to produce prototypes of office systems that can control and monitor all electrical appliances especially lighting systems to produce a good and conducive working environment. These results will be determined by individual preferences and sensor information that has been manually configured by the system manufacturer

    A New Smart Sensing System Using LoRaWAN for Environmental Monitoring

    Get PDF
    An increasing interest is drawn to environmental monitoring applications such as weather monitoring, smart city, and smart agriculture. This paper proposes a new Internet of Things (IoT) sensing system for environmental monitoring. The system consists of wireless sensor nodes, communication network, and data visualization and storage cloud. The wireless sensor node is powered by a solar panel and Radio Frequency (RF) energy harvester (in case solar energy is not available) to avoid changing batteries frequently and save the maintenance cost. It has a compact size and can sense many environmental parameters, such as temperature, air pressure, humidity, loudness, and air quality. A low power communication technology named LoRaWAN is used to connect different sensor nodes for a wide coverage area. Finally, a cloud server named Cayenne myDevice is employed to receive, present and store measured data. This smart sensing system with energy harvester can be used for many other IoT applications
    corecore