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IoT-Based Earthquake Detection and Alarm System: Real-Time Alerts, Thesis of Science education

This research paper presents a detailed analysis of an iot-based earthquake detection and alarm system designed to provide real-time alerts for enhanced disaster preparedness and emergency response. The system integrates an esp32 microcontroller, an mpu6050 accelerometer, an lcd display, an led indicator, a buzzer, and cloud-based services for remote alert notifications. The paper explores the system's design, implementation, and testing, highlighting its effectiveness in detecting seismic activity and providing immediate warnings. The integration of cloud-based data storage enhances its scalability and accessibility, making it a reliable solution for earthquake preparedness and mitigation.

Typology: Thesis

2022/2023

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Iot-based Earthquake Detection and Alarm System with Real-time
Alerts
Sheena Princess Bon — Joy Elienor Cruz — Jasmine Jaymee Rogayan
Department of Engineering
Collage of Engineering and Computer Technology
Wesleyan University- Philippines
Abstract—Earthquakes pose significant threats to human life
and infrastructure due to their unpredictable nature. This study
presents an IoT-based Earthquake Detection and Alarm Sys-
tem designed to provide real-time alerts for enhanced disaster
preparedness and emergency response. The system integrates
an ESP32 microcontroller, an MPU6050 accelerometer, an LCD
display, an LED indicator, a buzzer, and cloud-based services for
remote alert notifications. By continuously monitoring ground
vibrations, the accelerometer detects seismic activity, and the
ESP32 processes the data using a threshold-based algorithm.
Upon detecting an earthquake, the system triggers local alerts via
LEDs and buzzers while sending real-time notifications through
an IoT cloud platform and SMS alerts. The results demonstrate
that the system effectively detects earthquake-like vibrations and
provides immediate warnings, ensuring timely evacuation and
response. The integration of cloud-based data storage enhances
its scalability and accessibility, making it a reliable solution for
earthquake preparedness and mitigation.
I. INTRODUCTION
Natural catastrophes like earthquakes have presented
serious risks to infrastructure and human life in recent years.
Because earthquakes are unexpected and can have disastrous
effects, sophisticated monitoring and early warning systems
must be developed. One possible way to deal with this
pressing issue is to implement an Internet of Things (IoT)-
based earthquake detection and alarm system that provides
real-time alerts.
A network of linked devices that can gather, send, and
analyze data in real time is known as the Internet of Things
(IoT). A network of accelerometers and seismic sensors that
can continually monitor ground vibrations and identify
seismic activity can be installed by utilizing IoT technology.
Rapid data analysis and prompt alert distribution to impacted
areas are made possible by these sensors’ ability to interface
with a central server or cloud-based platform.
Real-time data collection and processing is the main focus
of an Internet of Things-based earthquake detection system.
The technology uses sophisticated algorithms to distinguish
between possible seismic occurrences and typical ground
vibrations. The system may immediately sound alerts and
notify emergency response teams, government officials, and
the public when it detects a possible earthquake. By enabling
prompt evacuation and mitigation measures, this real-time
alarm system lowers the number of fatalities and property
damage [1].
Furthermore, the scalability and flexibility of IoT-based
systems enable the integration of several sensors and commu-
nication protocols. These systems may now efficiently cover
wide geographic areas, including remote and high-risk places,
thanks to the development of wireless communication tech-
nologies like LoRaWAN and 5G [2]. Furthermore, machine
learning techniques and cloud-based data storage can improve
the precision and dependability of earthquake forecasts [3].
There is enormous potential for disaster management and
public safety when an Internet of Things-based seismic de-
tection and alarm system is put into place. To guarantee
the efficacy of such systems, however, issues with sensor
precision, data transfer dependability, and system scalability
need to be resolved [4]. By utilizing cutting-edge sensor
technology and cloud-based data analytics, this project seeks
to design and construct a reliable Internet of Things-based
earthquake detection system with real-time notifications.
II. RESEARCH OBJECTIVES
One of the main goals is to develop an earthquake detection
and alarm system with real-time Alerts:
1. To develop an IoT-based using an ESP32 and an
accelerometer.
2. To design a real-time alert mechanism.
3. To evaluate the system in terms of:
Functionality
Efficiency
Reliability
4. To know the implication of the develop system.
III. METHODOLOGY
The method begins with choosing the ESP32 microcon-
troller and an accelerometer (MPU6050) for sensing ground
motion. Local alarms are provided through an LCD, buzzer,
and LED. Seismic information is gathered from the
accelerom- eter and filtered using techniques to minimize
noise. Threshold levels are established for the identification of
earthquake events correctly. When an earthquake is sensed,
local alerts are pro- duced by the system through a buzzer,
LED, and LCD display. Wi-Fi connectivity supports real-time
alerting via SMS, email, or mobile application notifications.
Cloud storage is provided for data storage and analysis. A web
portal or mobile app provides users with remote monitoring of
earthquake activity for real-time awareness and enhanced
disaster response.
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Iot-based Earthquake Detection and Alarm System with Real-time

Alerts

Sheena Princess Bon — Joy Elienor Cruz — Jasmine Jaymee Rogayan

Department of Engineering

Collage of Engineering and Computer Technology

∗Wesleyan University- Philippines Abstract —Earthquakes pose significant threats to human life and infrastructure due to their unpredictable nature. This study presents an IoT-based Earthquake Detection and Alarm Sys- tem designed to provide real-time alerts for enhanced disaster preparedness and emergency response. The system integrates an ESP32 microcontroller, an MPU6050 accelerometer, an LCD display, an LED indicator, a buzzer, and cloud-based services for remote alert notifications. By continuously monitoring ground vibrations, the accelerometer detects seismic activity, and the ESP32 processes the data using a threshold-based algorithm. Upon detecting an earthquake, the system triggers local alerts via LEDs and buzzers while sending real-time notifications through an IoT cloud platform and SMS alerts. The results demonstrate that the system effectively detects earthquake-like vibrations and provides immediate warnings, ensuring timely evacuation and response. The integration of cloud-based data storage enhances its scalability and accessibility, making it a reliable solution for earthquake preparedness and mitigation. I. INTRODUCTION Natural catastrophes like earthquakes have presented serious risks to infrastructure and human life in recent years. Because earthquakes are unexpected and can have disastrous effects, sophisticated monitoring and early warning systems must be developed. One possible way to deal with this pressing issue is to implement an Internet of Things (IoT)- based earthquake detection and alarm system that provides real-time alerts. A network of linked devices that can gather, send, and analyze data in real time is known as the Internet of Things (IoT). A network of accelerometers and seismic sensors that can continually monitor ground vibrations and identify seismic activity can be installed by utilizing IoT technology. Rapid data analysis and prompt alert distribution to impacted areas are made possible by these sensors’ ability to interface with a central server or cloud-based platform. Real-time data collection and processing is the main focus of an Internet of Things-based earthquake detection system. The technology uses sophisticated algorithms to distinguish between possible seismic occurrences and typical ground vibrations. The system may immediately sound alerts and notify emergency response teams, government officials, and the public when it detects a possible earthquake. By enabling prompt evacuation and mitigation measures, this real-time alarm system lowers the number of fatalities and property damage [1]. Furthermore, the scalability and flexibility of IoT-based systems enable the integration of several sensors and commu- nication protocols. These systems may now efficiently cover wide geographic areas, including remote and high-risk places, thanks to the development of wireless communication tech- nologies like LoRaWAN and 5G [2]. Furthermore, machine learning techniques and cloud-based data storage can improve the precision and dependability of earthquake forecasts [3]. There is enormous potential for disaster management and public safety when an Internet of Things-based seismic de- tection and alarm system is put into place. To guarantee the efficacy of such systems, however, issues with sensor precision, data transfer dependability, and system scalability need to be resolved [4]. By utilizing cutting-edge sensor technology and cloud-based data analytics, this project seeks to design and construct a reliable Internet of Things-based earthquake detection system with real-time notifications. II. RESEARCH OBJECTIVES One of the main goals is to develop an earthquake detection and alarm system with real-time Alerts:

  1. To develop an IoT-based using an ESP32 and an accelerometer.
  2. To design a real-time alert mechanism.
  3. To evaluate the system in terms of: - Functionality - Efficiency - Reliability
  4. To know the implication of the develop system. III. METHODOLOGY The method begins with choosing the ESP32 microcon- troller and an accelerometer (MPU6050) for sensing ground motion. Local alarms are provided through an LCD, buzzer, and LED. Seismic information is gathered from the accelerom- eter and filtered using techniques to minimize noise. Threshold levels are established for the identification of earthquake events correctly. When an earthquake is sensed, local alerts are pro- duced by the system through a buzzer, LED, and LCD display. Wi-Fi connectivity supports real-time alerting via SMS, email, or mobile application notifications. Cloud storage is provided for data storage and analysis. A web portal or mobile app provides users with remote monitoring of earthquake activity for real-time awareness and enhanced disaster response.

A. Materials and Design The materials that use to develop the IoT-based earthquake detection and alarm system is designed using a combination of essential hardware components and cloud-based infrastructure to ensure accurate detection and real-time alerts. The system consists of the following materials:

- ESP32 Microcontroller: Serves as the core processing unit, handling sensor data and communication with the cloud platform. - Accelerometer (MPU6050): Detects ground vibrations and measures acceleration along three axes (X, Y, and Z). - LCD Display: Shows real-time system status, including acceleration values and earthquake magnitude. - LED with 220-ohm Resistor: Provides a visual alert by flashing upon detection of seismic activity, with the resistor regulating current to prevent damage. - Buzzer: Emits an audible alarm when an earthquake is detected. - Cloud-based Seismograph (Arduino IoT Cloud): Stores and analyzes earthquake data, providing remote access to real-time seismic information. - Communication Module (Wi-Fi/Bluetooth): Facilitates data transmission between the ESP32 and the cloud platform for alert dissemination. B. Schematic Diagram Image #1. The design consists of an ESP32 microcontroller, an accelerometer, an LCD display, a buzzer, and an LED, all working together to detect earthquakes and provide real-time alerts. The accelerometer detects vibrations and sends data to the ESP32. If the detected motion exceeds a certain threshold, the system triggers an alert. The LCD display shows the status of the system, such as ”Earthquake Detected.” When an earthquake is detected, the buzzer sounds and the LED lights up as a warning. The ESP32 also enables Wi-Fi connectivity, allowing the system to send real-time notifications. A breadboard and jumper wires are used to connect the components for easy prototyping and testing.

IV. RESULTS AND DISCUSSION

The IoT-based Earthquake Detection and Alarm System was tested to evaluate its accuracy in detecting seismic activity and its efficiency in delivering real-time alerts. The system utilizes an accelerometer to monitor ground vibrations and employs a threshold-based mechanism to differentiate between normal movements and potential earthquakes. Upon detecting significant tremors, it promptly triggers both visual and mobile notifications to alert users of possible danger. Image #1. The accelerometer graph in the real-time sensor data collected during seismic activity. The X, Y, and Z-axis acceleration values fluctuate, indicating ground movement. These fluctuations confirm that the system accurately detects and records seismic activity using threshold-based triggering mecha- nisms. The system processes these real-time variations to distinguish between normal environmental vibrations and potential earthquake events. Image #2. The system successfully detected earthquake- like vibrations using the accelerometer and immediately triggered an emergency alert. A mobile notification was sent via an IoT-based platform with the message “Emergency Alert: Earthquake Warning!” along with the instruction ”Lumikas para ikaw ay ligtas” (Evacuate for your safety). This demonstrates the system’s capability to provide instantaneous warnings, which are crucial for public safety. Additional emergency alert, Messaging system were sent via a messaging platform, instructing users to take immediate precautions such as “Drop, Cover, and Hold.”

V. CONCLUSION

The development of the IoT-based Earthquake Detection and Alarm System demonstrates its effectiveness in detecting seismic activity and issuing real-time alerts. The integration of an accelerometer with the ESP microcontroller enables accurate vibration monitoring, while the combination of local and cloud-based alert mechanisms ensures rapid notification to users and emergency response teams. Experimental results confirm the system’s ability to differentiate between normal vibrations and earthquake-induced movements, thereby reducing false alarms and improving response efficiency. The successful implementation of mobile alerts and real- time notifications enhances public safety by providing early warnings and enabling proactive measures. Additionally, the system’s scalability allows for integration with more advanced sensors and communication technologies, further improving earthquake detection capabilities. Overall, this study highlights the potential of IoT technology in disaster mitigation and underscores its significance in enhancing community resilience against earthquake. REFERENCES _[1] ZHOU, Y., WANG, L., & FENG, C.(2018). IOT-ENABLED REAL- TIME EARTHQUAKE DETECTION AND ALERT SYSTEM. SENSORS, 18(7),

[2] GOMEZ, J. D., LOPEZ, A., & MARTINEZ, P. (2020). IOT-BASED SEISMIC ACTIVITY MONITORING AND EARLY WARNING SYSTEM. IEEE INTERNET OF THINGS JOURNAL, 7(5), 3897-3905. [3] CHEN, L., ZHANG, H.,& LI, X. (2019). REAL-TIME EARTHQUAKE MONITORING USING IOT AND CLOUD COMPUTING TECHNOLOGIES. INTERNATIONAL JOURNAL OF ADVANCED RESEARCH IN COMPUTER SCIENCE AND SOFTWARE ENGINEERING, 9(4), 45-53. [4] PATEL, R., & SHAH, D. (2021). CHALLENGES AND OPPORTUNITIES IN IOT-BASED EARTHQUAKE DETECTION SYSTEMS. JOURNAL OF GEOPHYSICAL RESEARCH AND TECHNOLOGY, 12(3), 210- 223_