Distributed Acoustic Fiber Sensing for Research Campuses and Large Scientific Infrastructures -- The Hamburg WAVE proto-network

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Main Authors: Bölt, Oliver, Cristiano, Luigia, Croatto, Sandy, Gajewski, Dirk, Genthe, Erik, Gerberding, Oliver, Hadziioannou, Céline, Hammer, Conny, Hoffmann, Markus, Isleif, Katharina-Sophie, Kiel, Antonia, Krawczyk, Charlotte M., Maass, Regina, Barbosa, Ingra, Meyners, Norbert, Rading, Reinhardt, Schlarb, Holger, Schnabel, Roman, Vossius, Wanda, Wollin, Christopher
Format: Preprint
Published: 2025
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author Bölt, Oliver
Cristiano, Luigia
Croatto, Sandy
Gajewski, Dirk
Genthe, Erik
Gerberding, Oliver
Hadziioannou, Céline
Hammer, Conny
Hoffmann, Markus
Isleif, Katharina-Sophie
Kiel, Antonia
Krawczyk, Charlotte M.
Maass, Regina
Barbosa, Ingra
Meyners, Norbert
Rading, Reinhardt
Schlarb, Holger
Schnabel, Roman
Vossius, Wanda
Wollin, Christopher
author_facet Bölt, Oliver
Cristiano, Luigia
Croatto, Sandy
Gajewski, Dirk
Genthe, Erik
Gerberding, Oliver
Hadziioannou, Céline
Hammer, Conny
Hoffmann, Markus
Isleif, Katharina-Sophie
Kiel, Antonia
Krawczyk, Charlotte M.
Maass, Regina
Barbosa, Ingra
Meyners, Norbert
Rading, Reinhardt
Schlarb, Holger
Schnabel, Roman
Vossius, Wanda
Wollin, Christopher
contents Here, we demonstrate and investigate how Distributed Acoustic Sensing (DAS) can be utilized on research campuses and in large scientific infrastructures to study environmental vibrations and reduce their impact on high-precision experiments. We first discuss the potential of DAS in the context of particle accelerators, gravitational wave detection experiments and research campuses. Next, we present the results of our seismic measurement campaign conducted with our proto-network, which involved the probing of over 12 km of fiber, in May 2021. This campaign was conducted by the Hamburg WAVE initiative in Science City Hamburg Bahrenfeld and included DESY, the European XFEL, PETRA III and the University of Hamburg. Our proto-network confirms the ability to observe natural, anthropogenic, and infrastructural vibrations and how and where these couple into different parts of the heterogeneously set up fiber network. We also present results on a study of noise and motion coupling aspects of DAS probing double-redundant fiber loops in a unique environment, the European XFEL. Our results show that DAS greatly benefits research campuses and large scientific infrastructures and they highlight the opportunities and challenges of implementing and operating such seismic networks.
format Preprint
id arxiv_https___arxiv_org_abs_2511_17141
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Distributed Acoustic Fiber Sensing for Research Campuses and Large Scientific Infrastructures -- The Hamburg WAVE proto-network
Bölt, Oliver
Cristiano, Luigia
Croatto, Sandy
Gajewski, Dirk
Genthe, Erik
Gerberding, Oliver
Hadziioannou, Céline
Hammer, Conny
Hoffmann, Markus
Isleif, Katharina-Sophie
Kiel, Antonia
Krawczyk, Charlotte M.
Maass, Regina
Barbosa, Ingra
Meyners, Norbert
Rading, Reinhardt
Schlarb, Holger
Schnabel, Roman
Vossius, Wanda
Wollin, Christopher
Instrumentation and Detectors
Instrumentation and Methods for Astrophysics
Accelerator Physics
Geophysics
Here, we demonstrate and investigate how Distributed Acoustic Sensing (DAS) can be utilized on research campuses and in large scientific infrastructures to study environmental vibrations and reduce their impact on high-precision experiments. We first discuss the potential of DAS in the context of particle accelerators, gravitational wave detection experiments and research campuses. Next, we present the results of our seismic measurement campaign conducted with our proto-network, which involved the probing of over 12 km of fiber, in May 2021. This campaign was conducted by the Hamburg WAVE initiative in Science City Hamburg Bahrenfeld and included DESY, the European XFEL, PETRA III and the University of Hamburg. Our proto-network confirms the ability to observe natural, anthropogenic, and infrastructural vibrations and how and where these couple into different parts of the heterogeneously set up fiber network. We also present results on a study of noise and motion coupling aspects of DAS probing double-redundant fiber loops in a unique environment, the European XFEL. Our results show that DAS greatly benefits research campuses and large scientific infrastructures and they highlight the opportunities and challenges of implementing and operating such seismic networks.
title Distributed Acoustic Fiber Sensing for Research Campuses and Large Scientific Infrastructures -- The Hamburg WAVE proto-network
topic Instrumentation and Detectors
Instrumentation and Methods for Astrophysics
Accelerator Physics
Geophysics
url https://arxiv.org/abs/2511.17141