Earthquakes are one of the fatal natural disasters which are invincible and cannot be predicted beforehand. According to the DAWN News Report (January 31st, 2018), we have lost more than 81,000 precious lives (with more than 0.2 million got injuries) in Pakistan in the last couple of decades. The bi
Design and Implementation of RF-based Life Saving System for Identifying Human Objects under Earthquake Rubble
Earthquakes are one of the fatal natural disasters which are invincible and cannot be predicted beforehand. According to the DAWN News Report (January 31st, 2018), we have lost more than 81,000 precious lives (with more than 0.2 million got injuries) in Pakistan in the last couple of decades. The biggest challenge in such situations is the timely recovery of survivors from the earthquake rubble.
Traditional rescue operations (to identify the survivors) generally involve the deployment of trained dogs or manual searches through army persons or local residents. However, these conventional methods not only lack accuracy, but they are also tedious and time-consuming, hence making them severely ineffective in these situations where seconds define life or death. Moreover, such methods are not useful when the area under observation is vast, like the whole villages or the city, etc. Keeping above in view, there’s a dire need to develop an efficient, portable and self-powered system that can scan the large area in a short time and can identify the live buried objects accurately and effectively.
In our project, we propose a portable RF-based live-saving-system which can perfectly address the aforementioned limitations of the conventional methods. The proposed on-chip self-powered system, coupled with the smart and efficient algorithms, ensure not only the compactness but also reliability in terms of accuracy, hence making it an ideal solution for the identification of buried live objects in the case of earthquakes. Moreover, the proposed system can efficiently scan the large area acutely in a short time, and its careful engineering can enable its working or for the larger depths of different kinds of rubbles.
The principle behind the life detection system for buried survivors is the Doppler Effect. When an electromagnetic wave of L or S-band is aimed at a pile of collapsed buildings or earthquake rubble which is consisted of the buried human subject, this EM wave can penetrate through the rubble to reach the object. When the human object is illuminated by the EM wave, then the echo (reflected wave) will be modulated with the human object movement, which includes heartbeat and breathing. If the background clutters can be cancelled from echo signal, mean by proper demodulation, the breathing and heartbeat signal can be extracted by which buried survivor can be detected.
The implementation of this projects can be divided into following phases:
The general block diagram of the RF System is given below:

Fig.1 general block diagram
First phase of project is consisted of RF front end design which is further categorized into transmitter and receiver block. We are making a portable IC based stand-alone system for which the first step is the selection of IC’s and verification of their power levels through link budget.
The transmitter block consisted of the following components:
The receiver block consist of the following components:
After selecting all these IC’s based components of transmitter and receiver side is to made the layouts of these individual IC’s and then their fabrication.
The second phase of the project is consist of Antenna designing. The antenna which we are using due to its high gain and directivity is Vivaldi Antenna.
The most important phase of our implementation is getting Doppler shift by signal processing of the received signal from the buried survivor and extracting the useful information from the noise and the reflection of rubble by taking its Fast Fourier Transform (FFT).
The final phase consists of individual IC’s testing and then shifted them to a single PCB sheet for make a stand-alone system. Then this system can be easily portable due to its small size and can be used for real time scenarios for rescuing the buried survivor who become the victim of earthquake.

Fig.2 Overall system block diagram
The benefits of the device are as follows:
The technical details of the project for making front-end given below:
| Manufacturer | Components | Output power level |
| Mini circuits | Voltage control oscillator | 6 dBm |
| Mini circuits | High gain amplifier | 14 dB |
| Mini circuits | Low noise amplifier | 19 dB |
| Mini circuits | Power splitter | 3 dB |
| Mini circuits | Attenuator | 3 dB |
| Mini circuits | Mixer | 13 dB |
In the process of making layouts, we have to DC biased the amplifiers as well, so according to the values of dc biasing SMD components we select their models and then send them for fabrication. Their detail is given below:
SMD Components:
| Type of component | Package | value |
| Capacitor | 1206 | 10nF |
| Capacitor | 0805 | 1000pF |
| Inductor | 1206 | 6.8uH |
Rogers Sheet (Substrate):
We are using a good substrate for better results which is Rogers RO4350B.
| Substrate | Loss tangent | Relative permittivity |
| RO 4350B | 0.0037 | 3.48 |
Manufacturer
Mini circuits
Mini circuits
Mini circuits
Mini circuits
Mini circuits
Mini circuits
Type of component
Capacitor
Capacitor
Inductor
Substrate
RO 4350B
| Type of component | Package | value |
| Capacitor | 1206 | 10nF |
| Capacitor | 0805 | 1000pF |
| Inductor | 1206 | 6.8uH |
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