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Projecte llegit

Títol: Design and validation of an ultra low noise magnetometer for LISA mision


Estudiants que han llegit aquest projecte:


Director/a: RAMOS CASTRO, JUAN JOSÉ

Departament: EEL

Títol: Design and validation of an ultra low noise magnetometer for LISA mision

Data inici oferta: 08-02-2021     Data finalització oferta: 08-04-2021



Estudis d'assignació del projecte:
    GR ENG SIS TELECOMUN
Tipus: Individual
 
Lloc de realització: Fora UPC    
 
        Supervisor/a extern: Miquel Nofrarias Serra
        Institució/Empresa: Institut d'Estudis Espacials de Cataluny
        Titulació del Director/a: Dr. Fisiques
 
Nom del segon director/a (UPC): Juan Jose Ramos Castro
Departament 2n director/a:
 
Paraules clau:
Sensors, Soroll, Magnetòmetre, Espai, Ones gravitacionals,
 
Descripció del contingut i pla d'activitats:
L'estudiant col.laborarà amb el grup de recerca LISA-IEEC que
treballa en el desenvolupament d'instrumentació de diagnostics
per la missió LISA per detectar ones gravitacionals a l'espai
(http://www.ieec.cat/en/content/69/lisa)
L'activitat proposada per dur a terme al TFG es el disseny
d'un magnetòmetre de molt baix soroll (<1nT/sqrt(Hz)) basat en
sensors AMR per mesurar camp magnetic interplanetari i del
propi instrument a la banda de freqüències (0.1mHz a 100 mHz).
L'estudiant haurà d'analitzar les característiques de soroll
de l'etapa d'entrada, construir un prototip i fer mesures
experimentals per validar el disseny.
 
Overview (resum en anglès):
The dissertation main purpose is to design, validate and evaluate the performance of an ultra-low noise magnetometer based on an Anisotropic Magnetoresistance. The overall study covers insights over sub-millihertz frequencies, from theoretical and experimental inherent sensor noise performance to magnetic field measurements.

The totality of the project intends to contribute to the Institute of Space Studies of Catalonia (IEEC) research for the development of the sensing equipment for the European Space Agency first space-based gravitational wave observatory called LISA. The mission will enhance our knowledge about the beginning, evolution, and structure of the Universe, grasping data from gravitational wave sources that are of strong interest to astrophysics, from black holes and galaxy formation to tests of general relativity and cosmology, detecting gravitational waves coming from colossal objects such as merging supermassive black holes at the cores of massive galaxies. However, the electromagnetic field coming from the spacecraft electronics could disturb the gravitational waves measurements, where this dissertation takes over. First and foremost, the project is put into context, introducing the nature of the gravitational waves and the need for their detection.

Furthermore, the thesis presents the mission noise requirements, analysing the most suitable space-based magnetic sensor. Subsequently, the dissertation analyses, theoretically and experimentally, the anisotropic magnetoresistance performance, with the subsequent study of the magnetic field measurement and the evaluation of the back-action effect.

The project has been built on the extensive previous effort made by the IEEC and its team, where further work will be done to conclude with this international project.


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