SpaceWire-based Data Acquisition Network for the Solar Flare Sounding Rocket Experiment FOXSI-4 and FOXSI-5

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Main Authors: Nagasawa, Shunsaku, Pantazides, Athanasios, Cooper, Kristopher, Shimizu, Riko, Perez-Piel, Savannah, Minami, Takahiro, Zhang, Yixian, Kanniainen, Hunter, Watanabe, Shin, Takahashi, Tadayuki, Narukage, Noriyuki, Casas, Juan Camilo Buitrago, Glesener, Lindsay
Format: Preprint
Published: 2026
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author Nagasawa, Shunsaku
Pantazides, Athanasios
Cooper, Kristopher
Shimizu, Riko
Perez-Piel, Savannah
Minami, Takahiro
Zhang, Yixian
Kanniainen, Hunter
Watanabe, Shin
Takahashi, Tadayuki
Narukage, Noriyuki
Casas, Juan Camilo Buitrago
Glesener, Lindsay
author_facet Nagasawa, Shunsaku
Pantazides, Athanasios
Cooper, Kristopher
Shimizu, Riko
Perez-Piel, Savannah
Minami, Takahiro
Zhang, Yixian
Kanniainen, Hunter
Watanabe, Shin
Takahashi, Tadayuki
Narukage, Noriyuki
Casas, Juan Camilo Buitrago
Glesener, Lindsay
contents We developed a SpaceWire-based data acquisition (DAQ) system for the FOXSI-4 and FOXSI-5 sounding rocket experiments, which aim to observe solar flares with high sensitivity and dynamic range using direct X-ray focusing optics. The FOXSI-4 mission, launched on April 17, 2024, achieved the first direct focusing observation of a GOES M1.6 class solar flare with imaging spectroscopy capabilities in the soft and hard X-ray energy ranges, using a suite of advanced detectors, including two CMOS sensors, four CdTe double-sided strip detectors (CdTe-DSDs), and a Quad-Timepix3 detector. To accommodate the high photon flux from a solar flare and these diverse detector types, a modular DAQ network architecture was implemented based on SpaceWire and the Remote Memory Access Protocol (RMAP). This modular architecture enabled fast, reliable, and scalable communication among various onboard components, including detectors, readout boards, onboard computers, and telemetry systems. In addition, by standardizing the communication interface and modularizing each detector unit and its associated electronics, the architecture also supported distributed development among collaborating institutions, simplifying integration and reducing overall complexity. To realize this architecture, we developed FPGA-based readout boards (SPMU-001 and SPMU-002) that support SpaceWire communication for high-speed data transfer and flexible instrument control. In addition, a real-time ground support system was developed to handle telemetry and command operations during flight, enabling live monitoring and adaptive configuration of onboard instruments in response to the properties of the observed solar flare. The same architecture is being adopted for the upcoming FOXSI-5 mission, scheduled for launch in 2026.
format Preprint
id arxiv_https___arxiv_org_abs_2601_02788
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle SpaceWire-based Data Acquisition Network for the Solar Flare Sounding Rocket Experiment FOXSI-4 and FOXSI-5
Nagasawa, Shunsaku
Pantazides, Athanasios
Cooper, Kristopher
Shimizu, Riko
Perez-Piel, Savannah
Minami, Takahiro
Zhang, Yixian
Kanniainen, Hunter
Watanabe, Shin
Takahashi, Tadayuki
Narukage, Noriyuki
Casas, Juan Camilo Buitrago
Glesener, Lindsay
Instrumentation and Methods for Astrophysics
High Energy Astrophysical Phenomena
Solar and Stellar Astrophysics
Instrumentation and Detectors
We developed a SpaceWire-based data acquisition (DAQ) system for the FOXSI-4 and FOXSI-5 sounding rocket experiments, which aim to observe solar flares with high sensitivity and dynamic range using direct X-ray focusing optics. The FOXSI-4 mission, launched on April 17, 2024, achieved the first direct focusing observation of a GOES M1.6 class solar flare with imaging spectroscopy capabilities in the soft and hard X-ray energy ranges, using a suite of advanced detectors, including two CMOS sensors, four CdTe double-sided strip detectors (CdTe-DSDs), and a Quad-Timepix3 detector. To accommodate the high photon flux from a solar flare and these diverse detector types, a modular DAQ network architecture was implemented based on SpaceWire and the Remote Memory Access Protocol (RMAP). This modular architecture enabled fast, reliable, and scalable communication among various onboard components, including detectors, readout boards, onboard computers, and telemetry systems. In addition, by standardizing the communication interface and modularizing each detector unit and its associated electronics, the architecture also supported distributed development among collaborating institutions, simplifying integration and reducing overall complexity. To realize this architecture, we developed FPGA-based readout boards (SPMU-001 and SPMU-002) that support SpaceWire communication for high-speed data transfer and flexible instrument control. In addition, a real-time ground support system was developed to handle telemetry and command operations during flight, enabling live monitoring and adaptive configuration of onboard instruments in response to the properties of the observed solar flare. The same architecture is being adopted for the upcoming FOXSI-5 mission, scheduled for launch in 2026.
title SpaceWire-based Data Acquisition Network for the Solar Flare Sounding Rocket Experiment FOXSI-4 and FOXSI-5
topic Instrumentation and Methods for Astrophysics
High Energy Astrophysical Phenomena
Solar and Stellar Astrophysics
Instrumentation and Detectors
url https://arxiv.org/abs/2601.02788