Magnetic Field Simulation and Correlated Low-Frequency Noise Subtraction for an In-Orbit Demonstrator of Magnetic Measurements

被引:0
作者
Maria-Moreno, Cristian [1 ]
Mateos, Ignacio [1 ]
Pacheco-Ramos, Guillermo [2 ]
Rivas, Francisco [3 ]
Cifredo-Chacon, Maria-Angeles [1 ]
Quiros-Olozabal, Angel [1 ]
Guerrero-Rodriguez, Jose-Maria [1 ]
Karnesis, Nikolaos [4 ]
机构
[1] Univ Cadiz, Sch Engn, Cadiz 11519, Spain
[2] Univ Seville, Dept Ingn Aerosp & Mecan Fluidos, Seville 41092, Spain
[3] Univ Loyola Andalucia, Dept Quantitat Methods, Seville 41704, Spain
[4] Aristotle Univ Thessaloniki, Dept Phys, Thessaloniki 54124, Greece
关键词
Magnetic field measurement; Magnetic noise; Magnetic shielding; Magnetometers; Noise; Extraterrestrial measurements; Magnetic fields; Sensors; Magnetic sensors; Space vehicles; CubeSat; electronics; gravitational waves (GWs); low frequency; magnetometers; noise; space; SYSTEM; DESIGN;
D O I
10.1109/TIM.2024.3470036
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
In recent years, nanosatellites have revolutionized the space sector due to their significant economic and time-saving advantages. As a result, they have fostered the testing of advanced instruments intended for larger space science missions. The case of the Magnetic Experiment for the Laser Interferometer Space Antenna (MELISA) is presented in this work. MELISA is a magnetic measurement instrument which aims at demonstrating the in-orbit performance of anisotropic magnetoresistance (AMR) sensors featuring dedicated noise reduction techniques at sub-millihertz frequencies. Such low frequency ranges are relevant for future space-borne gravitational wave (GW) detectors, where the local magnetic environment of the satellite might yield a significant contribution to the overall noise budget of the observatory. The demanding magnetic noise levels required for this bandwidth, down to 0.1 mHz, make measurements arduous. To explore sensing solutions within the H2020 European Commission Programme with the involvement of the European Space Agency (ESA), the functional performance of MELISA-III will be validated in-orbit. During operations, there is the possibility to measure the low-frequency magnetic contribution stemming from orbiting the Earth's magnetic field, which will impede the characterization of the intrinsic performance of the sensor. With the objective of minimizing excess noise during the in-flight operations, the present research aims to simulate the environmental magnetic conditions in low Earth orbit (LEO) in order to identify and subtract undesired contributions to the measurements. The in-orbit long-term magnetic fluctuations are replicated using a triaxial Helmholtz coil system. A fluxgate magnetometer (FGM) allows the correlation of the generated field with the payload measurements, leading to the subsequent subtraction. Proving the effect of this approach will facilitate the noise characterization of magnetic sensors in LEO, paving the way for the in-orbit validation of MELISA-III for use in magnetically demanding missions with long integration times.
引用
收藏
页数:11
相关论文
共 50 条
  • [21] Fundamental Mode Orthogonal Fluxgate Magnetometer Applicable for Measurements of DC and Low-Frequency Magnetic Fields
    Murata, Naofumi
    Karo, Hikaru
    Sasada, Ichiro
    Shimizu, Takafumi
    IEEE SENSORS JOURNAL, 2018, 18 (07) : 2705 - 2712
  • [22] Fluxgate magnetometer for low-frequency magnetic electromagnetic compatibility measurements
    Weyand, K
    Bosse, V
    IEEE TRANSACTIONS ON INSTRUMENTATION AND MEASUREMENT, 1997, 46 (02) : 617 - 620
  • [23] Low-Frequency Magnetic Shielding
    Ashtari, Reza
    Jones, David H.
    2019 IEEE INTERNATIONAL SYMPOSIUM ON ELECTROMAGNETIC COMPATIBILITY, SIGNAL AND POWER INTEGRITY (EMC+SIPI), 2019, : 72 - 77
  • [24] Low Noise, Strain Modulated, Multiferroic Magnetic Field Sensor Systems
    Huo, Yujia
    Sofronici, Sydney
    Wang, Xuan
    D'Agati, Michael J.
    Finkel, Peter
    Bussmann, Konrad
    Mion, Thomas
    Staruch, Margo
    Jones, Nicholas J.
    Wheeler, Brad
    McLaughlin, Keith L.
    Allen, Mark G.
    Olsson, Roy H., III
    IEEE SENSORS JOURNAL, 2023, 23 (13) : 14025 - 14040
  • [25] Study of the Low-Frequency Excess Equivalent Magnetic Noise in GMI-Based Devices
    Portalier, Elodie
    Dufay, Basile
    Dolabdjian, Christophe P.
    Seddaoui, Djamel
    Yelon, Arthur
    Menard, David
    IEEE SENSORS JOURNAL, 2017, 17 (21) : 6888 - 6894
  • [26] Improved Measurement of the Low-Frequency Complex Permeability of Ferrite Annulus for Low-Noise Magnetic Shielding
    Yang, Ke
    Lu, Jixi
    Ding, Ming
    Zhao, Junpeng
    Ma, Danyue
    Li, Yang
    Xing, Bozheng
    Han, Bangcheng
    Fang, Jiancheng
    IEEE ACCESS, 2019, 7 : 126059 - 126065
  • [27] Low frequency noise in magnetic tunnel junctions
    Reed, DS
    Nordman, C
    Daughton, JM
    IEEE TRANSACTIONS ON MAGNETICS, 2001, 37 (04) : 2028 - 2030
  • [28] The effect of an amplitude-modulated high-frequency magnetic field on the low-frequency noise of an amorphous ferromagnetic sensor
    Sokol-Kutylovsky, O. L.
    MEASUREMENT TECHNIQUES, 2012, 55 (06) : 702 - 705
  • [29] The effect of an amplitude-modulated high-frequency magnetic field on the low-frequency noise of an amorphous ferromagnetic sensor
    O. L. Sokol-Kutylovsky
    Measurement Techniques, 2012, 55 : 702 - 705
  • [30] On the simulation of low-frequency noise upconversion in InGaP/GaAs HBTs
    Rudolph, Matthias
    Lenk, Friedrich
    Llopis, Olivier
    Heinrich, Wolfgang
    IEEE TRANSACTIONS ON MICROWAVE THEORY AND TECHNIQUES, 2006, 54 (07) : 2954 - 2961