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Matthias Weigelt

Publications and source records attributed to Matthias Weigelt.

2 recordsLinked to original sources

Evaluation of Deployable Solar Panels on GRACE-like Satellites by Closed-Loop Simulations

Future satellite gravimetry missions seek to surpass the performance of CHAMP, GOCE, GRACE, and GRACE-FO to meet increasing scientific and operational demands. These missions will integrate advanced technologies, including optical and quantum accelerometers, high-precision inter-satellite laser ranging, and micro-Newton electric thrusters. However, increased power demands for sensors and propulsion systems require larger solar panels, constrained by payload mass and launcher limitations. This study assesses the impact of modified satellite shapes on gravity field recovery (GFR) using closed-loop simulation. Five satellite configurations were analyzed: a standard shape and variations with single and double solar panels mounted on the top and bottom of the satellite body, each modeled with distinct finite element models and moments of inertia. Orbit simulations accounted for non-spherical static gravity and time-variable non-gravitational forces. Performance of a simplified gravitational reference sensor (SGRS) with optical interferometer test mass displacement readout was evaluated. The air drag coefficient, a complex parameter influenced by multiple factors, was varied from 2.25 (standard) to 4.5 (double-panel). Time-variable gravity background models were excluded to isolate instrument performance effects. Gravity models were evaluated in the spectral domain using Degree RMS of spherical harmonic coefficient differences. Discrepancies between configurations stemmed primarily from variations in SGRS actuation noise due to satellite cross-sectional area. Convergence of residuals in the spectral domain for the double-panel configuration under different drag coefficients confirmed the dominant role of SGRS performance in GFR accuracy.

physics.geo-ph

Analysis of GRACE range-rate residuals with focus on KBR instrument system noise

We investigate the post-fit range-rate residuals after the gravity field parameter estimation from the inter-satellite ranging data of the gravity recovery and climate experiment (GRACE) satellite mission. Of particular interest is the high-frequency spectrum (f gt 20 MHz) which is dominated by the microwave ranging system noise. Such analysis is carried out to understand the yet unsolved discrepancy between the predicted baseline errors and the observed ones. The analysis consists of two parts. First, we present the effects in the signal-to-noise ratio (SNRs) of the k-band ranging system. The SNRs are also affected by the moon intrusions into the star cameras field of view and magnetic torque rod currents in addition to the effects presented by Harvey et al. [2016]. Second, we analyze the range-rate residuals to study the effects of the KBR system noise. The range-rate residuals are dominated by the non-stationary errors in the high-frequency observations. These high-frequency errors in the range-rate residuals are found to be dependent on the temperature and effects of sun intrusion into the star cameras field of view reflected in the SNRs of the K-band phase observations.

physics.space-ph