1995arXiv (Cornell University)Open access

Modelling the Galactic Bar Using Red Clump Stars

K. Z. Stanek, Mario Mateo, A. Udalski, M. K. Szymański, J. Kałużny, M. Kubiak, W. Krzemiński

Open full text 0 citations

Abstract

The color-magnitude diagrams of $\sim 1 \times 10^6$ stars obtained for 19 fields towards the Galactic bulge with the OGLE project reveal a well-defined population of bulge red clump stars. We found that the distributions of the extinction-adjusted apparent magnitudes of red clump stars in fields lying at $l=\pm5°$ in galactic longitude differ by $\sim 0.4\; mag$. A plausible explanation of this observed difference in the luminosity distribution is that the Galactic bulge is a triaxial structure, or a bar, which is inclined to the line of sight by no more than $45°$. The part of the bar at the positive galactic longitude is closer to us. Work is now under way to model the Galactic bar by fitting the observed luminosity functions in the red clump region for various fields. Preliminary results indicate that the angle of the inclination of the bar to the line of sight can be as small as $\sim20°$. Gravitational microlensing can provide us with additional constrains on the structure of the Galactic bar.

Open-access reader

About this research paper

What this paper is about

The color-magnitude diagrams of $\sim 1 \times 10^6$ stars obtained for 19 fields towards the Galactic bulge with the OGLE project reveal a well-defined population of bulge red clump stars. We found that the distributions of the extinction-adjusted apparent magnitudes of red clump stars in fields lying at $l=\pm5°$ in galactic longitude differ by $\sim 0.4\; mag$. A plausible explanation of this observed difference in the luminosity distribution is that the Galactic bulge is a triaxial structure, or a bar, which is inclined to the line of sight by no more than $45°$. The part of the bar at the positive galactic longitude is closer to us. Work is now under way to model the Galactic bar by fitting the observed luminosity functions in the red clump region for various fields. Preliminary results indicate that the angle of the inclination of the bar to the line of sight can be as small as $\sim20°$. Gravitational microlensing can provide us with additional constrains on the structure of the Galactic bar.

Why it matters

A significance statement is not available in the OpenAlex record.

Key contribution

A contribution statement is not available in the OpenAlex record.

Method / approach

Method details are not available in the OpenAlex metadata.

Main findings

Findings are not separately available in the OpenAlex metadata.

Limitations

Limitations are not available in the OpenAlex metadata.

Applications

Application details are not available in the OpenAlex metadata.

Available abstract

The color-magnitude diagrams of $\sim 1 \times 10^6$ stars obtained for 19 fields towards the Galactic bulge with the OGLE project reveal a well-defined population of bulge red clump stars. We found that the distributions of the extinction-adjusted apparent magnitudes of red clump stars in fields lying at $l=\pm5°$ in galactic longitude differ by $\sim 0.4\; mag$. A plausible explanation of this observed difference in the luminosity distribution is that the Galactic bulge is a triaxial structure, or a bar, which is inclined to the line of sight by no more than $45°$. The part of the bar at the positive galactic longitude is closer to us. Work is now under way to model the Galactic bar by fitting the observed luminosity functions in the red clump region for various fields. Preliminary results indicate that the angle of the inclination of the bar to the line of sight can be as small as $\sim20°$. Gravitational microlensing can provide us with additional constrains on the structure of the Galactic bar.

Key concepts: Bulge, Physics, Red clump, Astrophysics, Gravitational microlensing, Stars, Galactic Center, Milky Way

Related papers

Back to paper searchBrowse research topicsOriginal source
Modelling the Galactic Bar Using Red Clump Stars — Research Paper | ScholarLens