ANS is committed to advancing, fostering, and promoting the development and application of nuclear sciences and technologies to benefit society.
Explore the many uses for nuclear science and its impact on energy, the environment, healthcare, food, and more.
Explore membership for yourself or for your organization.
Conference Spotlight
2026 Nuclear Energy Conference & Expo (NECX)
August 24–27, 2026
Dallas, TX|Hilton Anatole
Latest Magazine Issues
Jul 2026
Jan 2026
2026
Latest Journal Issues
Nuclear Science and Engineering
September 2026
Nuclear Technology
August 2026
Fusion Science and Technology
Latest News
Meeting the moment
Mark Peterspresident@ans.org
It is both an honor and a privilege to begin my term as president of the American Nuclear Society. I am deeply grateful for the trust placed in me by the membership, and I look forward to serving this remarkable Society over the coming year.
I would also like to recognize the leadership of my predecessor, Hash Hashemian, as well as the dedication of ANS CEO Craig Piercy, our staff, and countless volunteers. ANS succeeds because people choose to contribute their time, expertise, and energy in service of a mission larger than themselves.
We begin this year at a moment of tremendous opportunity for nuclear science and technology. Around the world, there is growing recognition that nuclear energy and nuclear technologies are essential to addressing some of society’s most pressing challenges. At the same time, advances in areas ranging from medical isotopes and fusion to space nuclear systems and advanced reactors are creating new possibilities for innovation and impact.
John A. Bernard, Allan F. Henry, David D. Lanning
Nuclear Science and Engineering | Volume 98 | Number 2 | February 1988 | Pages 87-96
Technical Paper | doi.org/10.13182/NSE88-A28488
Articles are hosted by Taylor and Francis Online.
The “reactivity constraint approach” is described and demonstrated to be an effective and reliable means for the automatic control of power in nuclear reactors. This approach functions by restricting the effect of the delayed neutron populations to that which can be balanced by an induced change in the prompt population. This is done by limiting the net reactivity to the amount that can be offset by reversing the direction of motion of the automated control mechanism. The necessary reactivity constraints are obtained from the dynamic period equation, which gives the instantaneous reactor period as a function of the reactivity and the rate of change of reactivity. The derivation of this equation is described with emphasis on the recently obtained “alternate” formulation. Following a discussion of the behavior of each term of this alternate equation as a function of reactivity, its use in the design and operation of a nonlinear, closed-loop, digital controller for reactor power is described. Details of the initial experimental trials of the resulting controller are given.