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dc.contributor.advisorBesson, David Z
dc.contributor.authorKunwar, Samridha
dc.date.accessioned2015-12-03T04:20:17Z
dc.date.available2015-12-03T04:20:17Z
dc.date.issued2015-05-31
dc.date.submitted2015
dc.identifier.otherhttp://dissertations.umi.com/ku:13870
dc.identifier.urihttp://hdl.handle.net/1808/19060
dc.description.abstractThe detection of ultra-high energy cosmic rays is constrained by their flux, requiring detectors with apertures of hundreds or even thousands of square kilometers and close to one hundred percent duty cycle. The sheer scale that would be required of conventional detectors, to acquire sufficient statistics for energy, composition or anisotropy studies, means that new techniques that reduce manpower and financial resources are continually being sought. In this dissertation, the development of a remote sensing technique based observatory known as bistatic radar, which aims to achieve extensive coverage of the Earth's surface, cf. Telescope Array's 700 km2 surface detector, is discussed. Construction of the radar projects transmitter station was completed in the summer of 2013, and remote receiver stations were deployed in June and November of 2014. These stations accomplish radar echo detection using an analog signal chain. Subject to less radio interference, the remote stations add stereoscopic measurement capabilities that theoretically allow unique determination of cosmic ray geometry and core location. An FPGA is used as a distributed data processing node within the project. The FPGA provides triggering logic for data sampled at 200 MSa/s, detecting Cosmic Ray shower echoes chirping at -1 to -10 Megahertz/microsecond (depending on the geometry) for several microseconds. The data acquisition system with low power consumption at a cost that is also comparatively inexpensive is described herein.
dc.format.extent106 pages
dc.language.isoen
dc.publisherUniversity of Kansas
dc.rightsCopyright held by the author.
dc.subjectParticle physics
dc.subjectAstrophysics
dc.subjectChirp
dc.subjectCosmic Rays
dc.subjectEmbedded System
dc.subjectFPGA
dc.subjectRadar
dc.subjectUHECR
dc.titleDesign And Development Of An Autonomous Radar Receiver For The Detection Of Ultra High Energy Cosmic Rays
dc.typeDissertation
dc.contributor.cmtememberAllen, Christopher
dc.contributor.cmtememberBaringer, Philip S
dc.contributor.cmtememberMcKay, Douglas
dc.contributor.cmtememberTapia Takaki, Daniel
dc.thesis.degreeDisciplinePhysics & Astronomy
dc.thesis.degreeLevelPh.D.
dc.rights.accessrightsopenAccess


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