LANL* V1.0: a radiation belt drift shell model suitable for real-time and reanalysis applications
Creators
- 1. Los Alamos National Laboratory, NM (United States)
Description
Space weather modeling, forecasts, and predictions, especially for the radiation belts in the inner magnetosphere, require detailed information about the Earth's magnetic field. Results depend on the magnetic field model and the L* (pron. L-star) values which are used to describe particle drift shells. Space wather models require integrating particle motions along trajectories that encircle the Earth. Numerical integration typically takes on the order of 105 calls to a magnetic field model which makes the L* calculations very slow, in particular when using a dynamic and more accurate magnetic field model. Researchers currently tend to pick simplistic models over more accurate ones but also risking large inaccuracies and even wrong conclusions. For example, magnetic field models affect the calculation of electron phase space density by applying adiabatic invariants including the drift shell value L*. We present here a new method using a surrogate model based on a neural network technique to replace the time consuming L* calculations made with modern magnetic field models. The advantage of surrogate models (or meta-models) is that they can compute the same output in a fraction of the time while adding only a marginal error. Our drift shell model LANL* (Los Alamos National Lab L-star) is based on L* calculation using the TSK03 model. The surrogate model has currently been tested and validated only for geosynchronous regions but the method is generally applicable to any satellite orbit. Computations with the new model are several million times faster compared to the standard integration method while adding less than 1% error. Currently, real-time applications for forecasting and even nowcasting inner magnetospheric space weather is limited partly due to the long computing time of accurate L* values. Without them, real-time applications are limited in accuracy. Reanalysis application of past conditions in the inner magnetosphere are used to understand physical processes and their effect. Without sufficiently accurate L* values, the interpretation of reanalysis results becomes difficult and uncertain. However, with a method that can calculate accurate L* values orders of magnitude faster, analyzing whole solar cycles worth of data suddenly becomes feasible.
Availability note (English)
Available from http://permalink.lanl.gov/object/tr?what=info:lanl-repo/lareport/LA-UR-08-07430Additional details
Publishing Information
- Journal Title
- Geoscientific Model Development (Print)
- Journal Issue
- Issue Jan 2008
- Journal Page Range
- vp.
- ISSN
- 1991-959X
INIS
- Country of Publication
- United States
- Country of Input or Organization
- United States
- INIS RN
- 41071793
- Subject category
- S71: CLASSICAL AND QUANTUM MECHANICS, GENERAL PHYSICS;
- Descriptors DEI
- DENSITY; DYNAMICS; EARTH MAGNETOSPHERE; EARTH PLANET; ELECTRONS; FORECASTING; MAGNETIC FIELDS; NEURAL NETWORKS; PARTICLES; PHASE SPACE; RADIATION BELTS; SATELLITES; SHELL MODELS; SIMULATION; SOLAR CYCLE; TRAJECTORIES; WEATHER
- Descriptors DEC
- EARTH ATMOSPHERE; ELEMENTARY PARTICLES; FERMIONS; LEPTONS; MATHEMATICAL MODELS; MATHEMATICAL SPACE; MECHANICS; NUCLEAR MODELS; PHYSICAL PROPERTIES; PLANETS; SPACE
Optional Information
- Contract/Grant/Project number
- AC52-06NA25396
- Funding organization
- US Department of Energy (United States)
- Secondary number(s)
- LA-UR--08-07430