Quartic scalar self-interactions produce a logarithmically running correction to the two-body force, constrain the self-coupling via solar system tests, and generate multipole-coupling tail interactions that advance the periastron without secular orbital decay.
Relativistic periastron advance beyond Einstein theory: analytical solution with applications
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abstract
We find a new solution to calculate the orbital periastron advance of a test body subject to a central gravitational force field, for relativistic theories and models beyond Einstein. This analitycal formula has general validity that includes all the post-Newtonian (PN) contributions to the dynamics and is useful for high-precision gravitational tests. The solution is directly applicable to corrective potentials of various forms, without the need for numerical integration. Later, we apply it to the Scalar Tensor Fourth Order Gravity (STFOG) and NonCommutative Geometry, providing corrections to the Newtonian potential of Yukawa-like form $V(r)=\alpha \frac{e^{-\beta r}}{r}$, and we conduct the first analysis involving all the PN terms for these theories. The same work is performed with a Schwarzschild geometry perturbed by a Quintessence Field, leading to a power-law potential $V(r)=\alpha_q {r}^q$. Finally, by using astrometric data of the Solar System planetary precessions and those of S2 star around Sgr A*, we infer new theoretical constraints and improvements in the bounds for $\beta$. The resulting simulated orbits turn out to be compatible with General Relativity.
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Tail effects of self-interacting scalar fields
Quartic scalar self-interactions produce a logarithmically running correction to the two-body force, constrain the self-coupling via solar system tests, and generate multipole-coupling tail interactions that advance the periastron without secular orbital decay.