Barred spiral galaxy
Barred spiral galaxies have a central bar of stars.
A barred spiral galaxy is a type of spiral galaxy that features a central, bar-shaped structure made of stars. In the nearby universe, roughly two out of every three spiral galaxies contain such a bar, which influences the movement of stars and interstellar gas and can also shape the spiral arms. The Milky Way, home to the Solar System, is itself a barred spiral galaxy. Edwin Hubble classified these galaxies as "SB" (spiral, barred) in his Hubble sequence, further dividing them by how tightly or loosely their spiral arms are wound. SBa galaxies have very tightly bound arms, while SBc galaxies have the loosest arms; SBb galaxies fall in between. SB0 is a barred lenticular galaxy. Later, a type called SBm was added for somewhat irregular barred spirals, such as the Magellanic Clouds—once thought to be irregular galaxies but now known to have barred spiral structures. Other major galaxy types in Hubble’s scheme include spiral, elliptical, and irregular galaxies. Though earlier models of galaxy formation and evolution did not predict that galaxies could become stable enough to host bars very early in cosmic history, recent evidence has revealed numerous spiral galaxies with bars in the early universe. **Bars**
Barred galaxies appear to be the norm: surveys indicate that up to two-thirds of all spiral galaxies develop a bar. The bar is generally thought to form from a density wave radiating from the galaxy’s center, which reshapes the orbits of inner stars. Over time, this effect extends to stars farther out, creating a self-sustaining bar structure. The bar is believed to act as a stellar nursery, funneling gas inward from the spiral arms through orbital resonance and fueling star formation near the center. This process may also explain why many barred spiral galaxies have active galactic nuclei, such as the one seen in the Southern Pinwheel Galaxy. Bars are thought to be temporary features in a spiral galaxy’s life; they decay over time, turning barred spirals into more regular spiral patterns. Once the bar’s mass grows too large, it compromises the structure’s stability. Simulations suggest that many bars undergo a "buckling" event, where a disturbance in the orbital resonances of stars causes the bar to collapse inward, becoming thicker and shorter. The exact mechanism behind this buckling instability is still debated. Barred spiral galaxies with a high central mass tend to have short, stubby bars. The presence of a supermassive black hole at the galactic center significantly suppresses and delays buckling, though it still occurs. Because so many spiral galaxies have bars, they are likely recurring phenomena in spiral galaxy development. The oscillating cycle from spiral to barred spiral and back is thought to take about two billion years on average. Recent studies support the idea that bars are a sign a galaxy has reached full maturity, after its formative years end. A 2008 investigation found that only 20 percent of spiral galaxies in the distant past had bars, compared with about 65 percent of nearby ones. **Grades**
The general classification is "SB" (spiral barred). Sub-categories depend on how open or tight the arms are: SBa galaxies have tightly bound arms, SBc have loosely bound arms, and SBb lies in between. SBm describes somewhat irregular barred spirals. SB0 is a barred lenticular galaxy.
- classification
- SB (spiral barred)
- subtypes
- SBa, SBb, SBc, SBm, SB0
- prevalence
- about two thirds of all spiral galaxies in the local universe
- bar formation
- density wave radiating from the center
- bar lifetime
- temporary; oscillating cycle of about two billion years
- early universe prevalence
- 20% in distant past vs. 65% locally
Lore & Background
Edwin Hubble classified spiral galaxies of this type as 'SB' in his Hubble sequence and arranged them into sub-categories based on how open the arms of the spiral are. SBa types feature tightly bound arms, while SBc types are at the other extreme and have loosely bound arms. SBb-type galaxies lie in between the two. SB0 is a barred lenticular galaxy. A new type, SBm, was subsequently created to describe somewhat irregular barred spirals, such as the Magellanic Clouds, which were once classified as irregular galaxies, but have since been found to contain barred spiral structures. The creation of the bar is generally thought to be the result of a density wave radiating from the center of the galaxy whose effects reshape the orbits of the inner stars. This effect builds over time to stars orbiting farther out, which creates a self-perpetuating bar structure. The bar structure is believed to act as a type of stellar nursery, channeling gas inwards from the spiral arms through orbital resonance, fueling star birth in the vicinity of its center. Bars are thought to be temporary phenomena in the lives of spiral galaxies; the bar structures decay over time, transforming galaxies from barred spirals to more 'regular' spiral patterns. Past a certain size the accumulated mass of the bar compromises the stability of the overall bar structure. Simulations show that many bars likely experience a 'buckling' event in which a disturbance in the orbital resonances of stars in the bar structure leads to an inward collapse in which the bar becomes thicker and shorter, though the exact mechanism behind this buckling instability remains hotly debated.
Reader's Guide
Barred spiral galaxies are significant because they represent a common and dynamic phase in the evolution of spiral galaxies. Surveys show that up to two-thirds of all spiral galaxies develop a bar, indicating that bars are a recurring phenomenon in spiral galaxy development, with an oscillating evolutionary cycle from spiral galaxy to barred spiral galaxy thought to take on average about two billion years. The bar structure influences star formation by channeling gas inward, and is also thought to explain why many barred spiral galaxies have active galactic nuclei. Recent studies have confirmed the idea that bars are a sign of galaxies reaching full maturity as the 'formative years' end. Although theoretical models had not previously expected galaxies becoming stable enough to host bars very early in the universe's history, evidence has recently emerged of the existence of numerous spiral galaxies in the early universe. The presence of a supermassive black hole in the galactic center significantly suppresses and delays buckling phenomena but does not prevent them.
Did You Know?
- The Milky Way Galaxy is classified as a barred spiral galaxy.
- Bars are found in about two thirds of all spiral galaxies in the local universe.
- The bar structure is believed to act as a type of stellar nursery, channeling gas inwards from the spiral arms.
- Only 20 percent of spiral galaxies in the distant past possessed bars, compared with about 65 percent of local counterparts.
Anatomy of a Barred Spiral Galaxy
A barred spiral galaxy is a layered architectural marvel composed of several distinct structural elements, each contributing differently to the system's mass, brightness, and overall scale. At its heart lies a central stellar bulge—a dense concentration of predominantly older stars that, in many cases, mirrors the appearance of a scaled-down elliptical galaxy. Surrounding this core is a bar-shaped elongation of stars that stretches outward from the bulge, serving as the launch point for the spiral arms. Beyond the bar, a flat rotating disc of stars, gas, and dust extends across the galaxy, maintaining a thickness-to-diameter ratio of roughly 0.2. Encircling the entire structure is a near-spherical halo populated by older, metal-poor stars and numerous globular clusters, alongside an invisible dark matter halo. At the very center of the bulge, a supermassive black hole anchors the system. The relative dominance of each component—whether the bulge, the disc, or the halo—shifts from one galaxy to the next, giving each barred spiral a unique structural fingerprint.
The Bar: Cosmic Prevalence and Detection
The defining feature of a barred spiral is, of course, the bar itself—a linear concentration of stars radiating outward from the central bulge, with the spiral arms taking their origin at the bar's tips. Surveys indicate that roughly two-thirds of all spiral galaxies possess this structure, though the bar's strength can range from prominent to quite subtle. What makes the bar particularly fascinating is its evolutionary trajectory across cosmic time. Approximately eight billion years ago, only about one in ten spirals displayed a bar; by 2.5 billion years ago that fraction had grown to roughly a quarter; and in the present-day observable universe, more than two-thirds carry bars. Detecting a bar is not always straightforward. In our own Milky Way, which is indeed a barred spiral, the bar is notoriously difficult to confirm from within the galactic plane. It was only through dedicated infrared surveys, notably those conducted with the Spitzer Space Telescope, that astronomers gathered compelling evidence for the bar's stellar distribution. In edge-on views of other barred spirals, the bar can sometimes be revealed through distinctive X-shaped or peanut-shell geometries that peak in visibility at roughly half the bar's full length.
Spiral Arms: Engines of Stellar Birth
The spiral arms that trace their elegant curves from the bar's endpoints into the broader disc are far more than decorative features—they are the primary nurseries where new stars are born. These long, thin bands of stellar material maintain a significantly higher mass density than the surrounding disc, and that compressed environment drives an elevated rate of star formation. The result is a population of young, hot OB stars whose intense blue-white light makes the arms glow noticeably brighter than the older, dimmer stars scattered across the rest of the disc. The geometry of the arms varies systematically across the Hubble sequence. Galaxies classified as Sc or SBc display very open, loosely wound arms, while their Sa and SBa counterparts exhibit tightly wrapped structures. This gradation in arm pitch angle is one of the key visual cues that allows astronomers to sort barred spirals into their proper classification. The arms also serve as the visible boundary between the bar-dominated inner region and the more diffuse outer disc, marking where the galaxy's most dynamic and luminous activity is concentrated.
Cosmic Context and Ancient Barred Spirals
In the present-day universe, spiral galaxies—barred and unbarred alike—account for roughly sixty percent of all galaxies when combined with irregular types. They preferentially inhabit low-density cosmic environments and are notably scarce in the dense cores of galaxy clusters, suggesting that the crowded, collision-rich conditions at cluster centers are hostile to the preservation of delicate spiral structure. Looking deep into the past, astronomers have identified remarkably ancient spiral systems. A rival candidate, Zhúlóng, carries an estimated redshift of 5.2 in one published analysis. Among grand design spirals specifically, BX442 stands out at eleven billion years of age, exceeding the previous record by more than two billion years.
Frequently Asked Questions
What is a barred spiral galaxy?
It is a spiral galaxy distinguished by a prominent elongated band of stars running through its core, linking the two spiral arms. In Hubble classification it carries the prefix SB, with subtypes ranging from SBa (tight arms) through SBb, SBc, SBm, to SB0 (loose arms).
How common are barred spiral galaxies?
Roughly two out of every three spiral galaxies in our local cosmic neighborhood possess a central bar. Notably, this fraction was much lower in the early universe, sitting at only about 20% among distant, ancient spirals.
How does the central bar form and how long does it last?
The bar is thought to arise from a density wave radiating outward from the galactic center, drawing stars and gas into an elongated alignment. It is not a permanent feature; it oscillates in a cycle lasting around two billion years before fading and reforming.
Is the Milky Way a barred spiral galaxy?
Yes, our home galaxy is classified as a barred spiral, placing the Solar System squarely within one of these systems. The central bar influences the orbital paths of stars and the flow of interstellar gas throughout the disk.
Why do astronomers care about barred spiral galaxies?
Because the bar reshapes the motion of both stars and gas, it acts as a key driver of structural evolution in spiral galaxies. Understanding bar dynamics helps explain how spiral arms form, how gas funnels toward the center, and how galactic morphology shifts over cosmic time.
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