Details

Analiza delovanja in umerjanje prototipa elektronskega kompasa
ID Jan, Miha (Author), ID Rozman, Robert (Mentor) More about this mentor... This link opens in a new window

.pdfPDF - Presentation file, Download (18,38 MB)
MD5: E564B1EFE519157775BBAEB0FD86E694

Abstract
Diplomska naloga obravnava analizo delovanja in umerjanje prototipa elektronskega kompasa (e-kompasa), ki temelji na meritvah zemeljskega magnetnega polja. V prvem delu so predstavljene osnove magnetizma in zemeljskega magnetnega polja ter razlike med magnetnim in geografskim severom, ki vplivajo na določanje prave smeri neba. Obravnavani sta tipali, ki se najpogosteje uporabljata v sistemih e-kompasa, in sicer magnetometer ter pospeškometer, skupaj z njunimi lastnostmi in omejitvami. V nadaljevanju sledi analiza kombiniranega tipala LSM303AGR, ki združuje magnetometer in pospeškometer. Z uporabo programskega orodja MEMS Studio so analizirane meritve posameznih osi. Iz teh meritev so določeni odmiki, ki nastanejo zaradi magnetnih motenj in lastnosti tipala. Na podlagi pridobljenega znanja je zasnovan in izveden prototip e-kompasa, ki omogoča zajem meritev, nagibno kompenzacijo s pomočjo pospeškometra, umerjanje trdih magnetnih motenj ter izračun magnetnega in pravega azimuta. Razviti prototip omogoča celosten vpogled v delovanje e-kompasa kot merilnega sistema ter izpostavlja pomen ustrezne obdelave in umerjanja meritev za zanesljivo določanje smeri. V diplomskem delu smo preverili, ali je prototip mogoče uporabiti za določanje orientacije prometnih znakov. Z eksperimentalnimi meritvami smo ugotovili, da ob ustreznem umerjanju omogoča dovolj točno določanje orientacije, zato je takšna raba tehnično izvedljiva. Praktična uporaba pa ni povsem enostavna, saj lokalno okolje vpliva na izmerjeno orientacijo, zato bi bilo treba vsak e-kompas umeriti na mestu namestitve. Pred dejansko uporabo bi bilo treba dodatno preveriti njegovo praktičnost in zanesljivost v realnem okolju.

Language:Slovenian
Keywords:elektronski kompas, LSM303AGR, magnetometer, pospeškometer, umerjanje tipal, MEMS Studio, nagibna kompenzacija, ATmega328P
Work type:Bachelor thesis/paper
Organization:FRI - Faculty of Computer and Information Science
Year:2026
PID:20.500.12556/RUL-189395 This link opens in a new window
Publication date in RUL:05.10.2026
Views:16
Downloads:4
Metadata:XML DC-XML DC-RDF
:
Copy citation
Share:Bookmark and Share

Secondary language

Language:English
Title:Analysis of operation and calibration of electronic compass prototype
Abstract:
This thesis investigates the operation and calibration of a prototype electronic compass (e-compass) based on measurements of the Earth’s geomagnetic field. The first part presents the fundamentals of magnetism and the Earth’s magnetic field, as well as the differences between magnetic and geographic north, which affect the determination of the true heading. The two sensors, most commonly used in e-compass systems, namely the magnetometer and the accelerometer, are discussed, including their characteristics and limitations. The combined LSM303AGR sensor, which integrates a magnetometer and an accelerometer, is analyzed using MEMS Studio software. Measurements of individual axes are evaluated. From these measurements, offsets caused by magnetic disturbances and sensor characteristics are determined. Based on the acquired knowledge, an e-compass prototype is designed and implemented, enabling data acquisition, tilt compensation using the accelerometer, calibration of hard-iron distortions, and calculation of both magnetic and true azimuth. The developed prototype provides a comprehensive insight into the operation of an e-compass as a measurement system and highlights the importance of proper data processing and calibration for reliable heading determination. The thesis also examines whether the prototype can be used to determine the orientation of traffic signs. Experimental measurements showed that, when properly calibrated, the prototype determines orientation with sufficient accuracy, so such use is technically feasible. However, practical use is not entirely straightforward, because the local environment affects the measured orientation and each e-compass would have to be calibrated at its installation site. Before actual use, the practicality and reliability of the e-compass in a real environment should be further verified.

Keywords:electronic compass, LSM303AGR, accelerometer, sensor calibration, MEMS Studio, tilt compensation, ATmega328P

Similar documents

Similar works from RUL:
Similar works from other Slovenian collections:

Back