{"version":"1.0","type":"rich","provider_name":"Acast","provider_url":"https://acast.com","height":250,"width":700,"html":"<iframe src=\"https://embed.acast.com/$/67f5a4318e7bdeb4a63ed446/6a88086e68ac7c01df9ee3a9?\" frameBorder=\"0\" width=\"700\" height=\"250\"></iframe>","title":"The Radiation Beam Needed for the Moon and Mars","description":"<p>In this episode of Micro Journeys, host Daniel Marrujo travels to the NASA Space Radiation Laboratory (NSRL) to explore one of the only facilities in the country capable of simulating deep-space radiation conditions on Earth. Marrujo sits down with Trevor Olsen, a nuclear engineer and physicist who has worked at the facility for over seven years, to break down how NSRL bombards electronic components with high-energy, heavy ions to prepare them for use in space, national security, and commercial applications.</p><p><br></p><p>The conversation dives into the mechanics behind the facility's synchrotron, where a chaotic, naturally occurring beam must be precisely shaped using a series of dipole, quadrupole, and octupole electromagnets. Olsen walks through how the beam evolves from an unpredictable circular shape into the controlled square form required for testing, and how engineers manage magnet strength and RF cavities throughout the acceleration cycle to keep the beam confined and on target.</p><p>The solution lies in real-time control: thousands of dynamic systems work simultaneously to deliver a precisely tuned beam, at the exact ion type and energy level requested, ensuring every test replicates space conditions with scientific accuracy.</p><p><br></p><p><strong>What You'll Discover in This Episode:</strong></p><p><br></p><ul><li>00:25 — Why NSRL's combination of energy level and ion heaviness makes it one of the rarest testing facilities in the country</li><li>02:02 — Trevor Olsen's background in nuclear engineering and physics, and how the control room's dipole, quadrupole, and octupole magnets shape the beam</li><li>02:59 — The role of the synchrotron's main magnet and RF cavities in accelerating and confining the beam</li><li>04:10 — Finding the \"sweet spot\": how the beam is refined to the exact energy needed before extraction</li><li>04:56 — How thousands of dynamic systems monitor and adjust the beam in real time to match user specifications</li></ul><p><br></p><p><strong>Let’s Connect</strong></p><p><br></p><ul><li><a href=\"https://www.linkedin.com/in/dan-marrujo/\" rel=\"noopener noreferrer\" target=\"_blank\">Daniel Marrujo</a></li><li><a href=\"https://www.bnl.gov/staff/tolsen\" rel=\"noopener noreferrer\" target=\"_blank\">Trevor Olsen</a></li><li><a href=\"https://tss.llc/\" rel=\"noopener noreferrer\" target=\"_blank\">TSS Website</a></li></ul>","author_name":"Trusted Strategic Solutions"}