A four-group fission-product absorption chain library using ENDF/B-IV decay data and cross sections processed with a typical light water reactor spectrum for a modified version of the original CINDER code has been developed as described in Part 1. CINDER is a general point-depletion and fission product code based on an analytical solution of the equations describing nuclides coupled in any linear sequence of radioactive decays and neutron absorptions. The basic code has been in wide use for a number of years. Previously, the user was required to specify all physical data. This report describes the chain library in detail and a modified version of the basic CINDER code (EPRI-CINDER) that is still compatible with existing libraries.
This article discusses that it is a testament to the hard work and ingenuity of the engineers working in the space program that such complicated systems get launched successfully. To the people who study it professionally, risk is the probability, or frequency (probability per unit time), and the consequence (severity) of an undesired event, and the uncertainties associated with the estimated probabilities and consequences. NASA has adopted a “continuous risk management” process for all its programs and projects. This process begins with the identification and analysis of program or project risks that impact success criteria. The risk management process continues with risk analysis, planning, tracking, and control. All unacceptable risks are dealt with before a project or program can proceed. Probabilistic risk assessments (PRA) are useful in every phase of a mission life cycle, not just at design or before launch. A PRA performed in the design phase can help identify the risks associated with systems and components and with technological options.
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