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Upgrading the LANSCE accelerator with a SNS RF-driven H- ion source.

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Area of Science:

  • Accelerator Physics
  • Ion Source Technology
  • Particle Accelerators

Background:

  • The LANSCE accelerator currently uses a filament-driven H- ion source with limitations in beam current and frequent replacement requirements.
  • The existing source operates at a 10% plasma duty factor, requiring replacement every 4 weeks, causing significant downtime.
  • The current beam current of 12-16 mA is below the LANSCE accelerator's 24 mA acceptance.

Purpose of the Study:

  • To evaluate the feasibility and challenges of integrating the Spallation Neutron Source (SNS) RF-driven H- ion source into the LANSCE accelerator.
  • To determine if the SNS source can meet LANSCE's requirements for higher beam current and improved operational efficiency.
  • To analyze the potential benefits, including increased beam current, extended source lifetime, and reduced maintenance downtime.

Main Methods:

  • Comparative analysis of the operational parameters and performance metrics of the LANSCE and SNS H- ion sources.
  • Review of the technical specifications, including beam current, duty factor, gas consumption, and emittance.
  • Discussion of the engineering challenges associated with adapting the SNS source to the LANSCE injector system.

Main Results:

  • The SNS RF-driven H- ion source delivers a higher beam current (∼50 mA) at a 6% duty factor compared to the LANSCE source.
  • The SNS source demonstrates a significantly longer operational lifetime (up to 7 A h) and higher availability (>99.5%).
  • The SNS source requires more H2 gas (∼30 SCCM) but offers faster installation (<12 h) and lower Cesium consumption.

Conclusions:

  • The SNS H- ion source presents a promising upgrade for the LANSCE accelerator, offering substantial improvements in beam current and operational efficiency.
  • Successful integration could decrease source replacement time by a factor of 7 and increase source lifetime by a factor of 4.
  • Addressing the differing characteristics and operating regimes between the two sources is crucial for successful implementation.