Publication | Open Access
Optimization of shielding to reduce cosmic radiation damage to packaged semiconductors during air transport using Monte Carlo simulation
15
Citations
12
References
2020
Year
EngineeringElectromagnetic CompatibilityRadiation ProtectionCosmic Radiation DamageTransport PhenomenaMcnp 6.2Computational ElectromagneticsElectronic PackagingElectrical EngineeringThermal ProtectionMonte CarloRadiation TransportCosmic RayCosmic Ray-induced ParticlesMonte Carlo SimulationAir TransportAerospace EngineeringShielding MaterialsElectrical Insulation
Cosmic ray-induced particles can lead to failure of semiconductors packaged for export during air transport. This work performed MCNP 6.2 simulations to optimize shielding against neutrons and protons induced by cosmic radiation The energy spectra of protons and neutrons by incident angle at the flight altitude were determined using atmospheric cuboid model. Various candidates for the shielding materials and the geometry of the Unit Load Device Container were evaluated to determine the conditions that allow optimal shielding at all sides of the container. It was found that neutrons and protons, at the flight altitude, generally travel with a downward trajectory especially for the particles with high energy. This indicated that the largest number of particles struck the top of the container. Furthermore, the simulation results showed that, among the materials tested, borated polyethylene and stainless steel were the most optimal shielding materials. The optimal shielding structure was also determined with the weight limit of the container in consideration. Under the determined optimal shielding conditions, a significantly reduced number of neutrons and protons reach the contents inside the container, which ultimately reduces the possibility of semiconductor failure during air transport.
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