37 research outputs found
Efficient direct 2,2,2-trifluoroethylation of indoles via C-H functionalization
A novel highly C3 selective metal free trifluoroethylation of indoles using 2,2,2-trifuoroethyl(mesityl)-iodonium triflate was developed. The methodology enables the introduction of a trifluoroethyl group in a fast and efficient reaction under mild conditions with high functional group tolerance. Beyond the synthetic developments, quantum chemical calculations provide a deeper understanding of the transformation. This journal i
Navigating to the Moon Along Low-Energy Transfers
This paper presents a navigation strategy to fly to the Moon along a Weak
Stability Boundary transfer trajectory. A particular strategy is devised to
ensure capture into an uncontrolled relatively stable orbit at the Moon. Both
uncertainty in the orbit determination process and in the control of the thrust
vector are included in the navigation analysis. The orbit determination process
is based on the definition of an optimal filtering technique that is able to
meet accuracy requirements at an acceptable computational cost. Three
sequential filtering techniques are analysed: an extended Kalman filter, an
Unscented Kalman filter and a Kalman filter based on high order expansions. The
analysis shows that only the unscented Kalman filter meets the accuracy
requirements at an acceptable computational cost. This paper demonstrates lunar
weak capture for all trajectories within a capture corridor defined by all the
trajectories in the neighbourhood of the nominal one, in state space. A minimum
f'v strategy is presented to extend the lifetime of the spacecraft around the
Moon. The orbit determination and navigation strategies are applied to the case
of the European Student Moon Orbiter
The 1:1 resonance in Extrasolar Systems: Migration from planetary to satellite orbits
We present families of symmetric and asymmetric periodic orbits at the 1/1
resonance, for a planetary system consisting of a star and two small bodies, in
comparison to the star, moving in the same plane under their mutual
gravitational attraction. The stable 1/1 resonant periodic orbits belong to a
family which has a planetary branch, with the two planets moving in nearly
Keplerian orbits with non zero eccentricities and a satellite branch, where the
gravitational interaction between the two planets dominates the attraction from
the star and the two planets form a close binary which revolves around the
star. The stability regions around periodic orbits along the family are
studied. Next, we study the dynamical evolution in time of a planetary system
with two planets which is initially trapped in a stable 1/1 resonant periodic
motion, when a drag force is included in the system. We prove that if we start
with a 1/1 resonant planetary system with large eccentricities, the system
migrates, due to the drag force, {\it along the family of periodic orbits} and
is finally trapped in a satellite orbit. This, in principle, provides a
mechanism for the generation of a satellite system: we start with a planetary
system and the final stage is a system where the two small bodies form a close
binary whose center of mass revolves around the star.Comment: to appear in Cel.Mech.Dyn.Ast