REVIEW 3 major objections 4 minor 63 references
A massive star cluster is channeling cosmic rays out of the Milky Way disk, with energy densities over an order of magnitude above the local interstellar medium.
Reviewed by Pith at T0; open to challenge. T0 means a machine referee read the full paper against a public rubric. the ladder, T0–T4 →
T0 review · deepseek-v4-flash
2026-08-01 22:17 UTC pith:RHOAIFRN
load-bearing objection A careful Fermi-LAT analysis finds a likely new GeV component connected to Westerlund 1's TeV ring, but the H I cavity—the main support for a nascent outflow—rests on uncertain kinematics, leaving the interpretation conditional. the 3 major comments →
A cosmic-ray loaded nascent outflow driven by a massive star cluster
The pith
A machine-rendered reading of the paper's core claim, the machinery that carries it, and where it could break.
Core claim
The paper establishes that the GeV gamma-ray emission J1654−467, a Gaussian structure roughly 150 pc long in projection, is the low-energy continuation of the TeV ring around Westerlund 1, tracing relativistic electrons that have escaped the cluster's superbubble and are moving into a low-density cavity in the Galactic disk. The spectral and spatial continuity between the Fermi-LAT and H.E.S.S. observations supports a common leptonic origin from a single electron population injected at the cluster wind termination shock. The coincident H I under-density, with a deficit of about 0.3–0.7 atoms cm−3, is interpreted as the nascent outflow cavity, requiring an energy of order 10^50 erg readily su
What carries the argument
The central mechanism is inverse-Compton emission from relativistic electrons that are accelerated at the termination shock of the collective cluster wind, then advected and diffused along the superbubble outflow. The energy-dependent cooling of these electrons naturally explains why the TeV emission stays near the cluster while the GeV emission extends further: lower-energy electrons have longer cooling times and travel farther. The spectral softening with distance and the high-energy cutoff in the far outflow are used to estimate the transport time-scale (125–200 kyr), constraining the flow geometry and diffusion coefficient.
Load-bearing premise
The H I velocity windows chosen (v_LSR from −63 to −37 km/s) are assumed to isolate gas at the same distance as Westerlund 1; if the under-density is a chance fluctuation or lies at a different distance, the spatial coincidence with the gamma-ray emission loses its causal meaning.
What would settle it
A parallax measurement of the H I cavity gas or detection of a different distance would break the association. Alternatively, if future data show that the GeV source spectrum does not soften with distance (i.e., no high-energy cutoff in the far outflow), the cooling/transport picture would be contradicted.
If this is right
- The detection provides the first direct evidence that a young massive star cluster is actively channeling cosmic rays out of the Galactic disk, supporting models of cluster-driven outflows.
- The cosmic-ray energy density in the outflow exceeds the local interstellar medium by more than an order of magnitude, meaning cosmic rays can exert dynamical pressure on the gas and influence the outflow's evolution.
- The inferred transport time to the far outflow is much shorter than spherically symmetric superbubble advection predicts, implying either a strongly collimated flow or significant diffusive transport, which will constrain superbubble models.
- If such outflows are common, as the paper suggests, they could be a major pathway for delivering cosmic rays from star-forming regions into the Galactic halo, with implications for the cosmic-ray budget and galactic wind models.
Where Pith is reading between the lines
- If this outflow is generic, similar GeV outflows and H I cavities should be detectable around other young massive clusters, and targeted multi-wavelength searches would test this prediction.
- The spectral softening with distance along the outflow, though only a ~2σ indication, could be a probe of energy-dependent diffusion in superbubble environments if confirmed with more data.
- The inferred transport time-scale implies that advection is not spherically symmetric; a collimated chimney or magnetic-field-guided flow would be a natural explanation, which could be tested with future polarimetric or radio observations.
- Cosmic rays escaping through such chimneys may contribute to the extended gamma-ray emission observed at high Galactic latitudes and to the 'cocoon' emission around other star-forming regions, possibly linking cluster outflows to the large-scale cosmic-ray sea.
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. The paper reports a Fermi-LAT study of the Westerlund 1 region between 3 GeV and 3 TeV, identifying a new extended GeV source, J1654−467, modeled as a Gaussian of 0.71° radius located south of the cluster, plus a TeV-template component. The GeV emission connects spectrally to the H.E.S.S. TeV ring, and the authors propose that both arise from inverse-Compton emission of electrons accelerated at the cluster wind termination shock. They further identify an H I under-density in GASS III data at velocities bracketing the cluster's radial velocity and interpret this as a cavity aligned with the GeV source, arguing that the cluster is in the early stages of blowing a CR-loaded outflow through the Galactic disc. A one-zone leptonic model reproduces the total SED with an efficiency of 0.7% of the wind power, and a far-region model is used to infer an injection period and a 125–200 kyr interval without fresh injection, interpreted as a transport time-scale. The paper concludes that the CR energy density in the outflow is more than an order of magnitude above the local ISM.
Significance. If the interpretation holds, this is the first direct observational evidence for a cosmic-ray-loaded outflow from a young massive cluster and would strongly constrain models of CR transport and superbubble blowout. The Fermi-LAT analysis is careful and reproducible: the authors use 15 years of public data, a custom Galactic diffuse model with multiple degrees of freedom, AIC-based model selection, pulsar contamination checks, and residual maps, and the GeV–TeV spectral continuity is credible. The main risk is the H I cavity: its association with Westerlund 1 is not quantified and the kinematics are ambiguous. The transport time-scale also rests on a marginal spectral feature. These issues are local and can be fixed with additional analysis; they do not invalidate the detection of the extended GeV source, whose morphological connection to the TeV emission is the strongest part of the paper.
major comments (3)
- [Methods, 'Galactic kinematics in the direction of Westerlund 1'; 'H I column densities'; Fig. 3] The claim that J1654−467 traces a nascent outflow rests on the identification of the H I under-density as a cavity at the distance of Westerlund 1. The paper itself states (Methods) that kinematics in this direction deviate from rotation, the v_LSR windows contain a superposition of Norma and Scutum-Crux arms, and near-far ambiguity is severe. The density deficit is measured against two hand-picked control regions with no significance estimate. A local minimum in a crowded spiral-arm region can arise by chance. Please provide a statistical significance (e.g., bootstrap/control-region ensemble) and/or independent distance evidence (e.g., 3D dust, HI self-absorption) linking the cavity to Wd1, and discuss the known bubbles B1/B2 as a cross-check.
- [Results 'Modelling'; Methods 'Modelling details'; Fig. 4, Fig. 9] The far-outflow model fixes the normalization by construction (assumes the total-model injection and adjusts the injection period), so the inferred 0.5–1 Myr injection time and 125–200 kyr 'no new particles' interval are partly circular. This is compounded by the paper's own statement (Methods) that the near/far spectral softening is only ~2σ significant. The transport-time-scale conclusion is therefore not robust. Please present the far model as an illustration with explicit caveats, or propagate uncertainties and show sensitivity to the assumed injection history and diffusion coefficient.
- [Abstract; Results 'Modelling'; Concluding remarks] The energy-density claim ('more than an order of magnitude above the ISM') depends on the assumed electron acceleration efficiency η=0.7%, the assumed hadronic-to-electron ratio, and the assumed cavity depth. The abstract qualifies with 'assuming standard...', but the concluding remarks state the estimate categorically. A sensitivity study over η, B, and e/p ratio, or a softened statement, is needed to make this part of the central claim proportionate.
minor comments (4)
- [Methods, 'Modelling details'] The 'Modelling details' subsection appears twice verbatim, including line-number artifacts; remove the duplicate.
- [Fig. 3] Axis labels render units as 'km s□1' and '1020 cm□2'; fix the typography/superscripts.
- [Table 1] Clarify the sign convention in the ΔAIC definition. The text's formula appears inconsistent with the positive values reported unless Δd.o.f and ΔlnL are defined as baseline-minus-model; please state the convention explicitly.
- [Fig. 6] Panels (c,d) use different color scales; adding a common scale or explicit colorbar limits would aid comparison.
Circularity Check
The GeV/TeV/H I discovery is independent, but the far-outflow 'transport time-scale' is a fitted parameter read back as a physical timescale.
specific steps
-
fitted input called prediction
[Results and Discussion, 'Modelling'; Methods, 'Modelling details' (Fig. 9)]
"To further investigate the scenario of CR transport along the nascent outflow, we present a second model to fit only the emission of the 'far' outflow region ... We assume the same energy injection as that of the total model, but fix the period during which injection occurred to match the normalisation in the far region. The required time-scale of injection is 0.5–1 Myr. The high-energy cut-off ... can be reproduced if no new particles were injected into this region in the last approximately 125–200 kyr ... This can be interpreted as the transport time-scale from the acceleration site ... to t"
The 0.5–1 Myr injection period and the 125–200 kyr cutoff are free parameters of the far-region model, fixed to reproduce the observed normalization and spectral cutoff; they are then presented as a physical transport time ('This can be interpreted as the transport time-scale...'). The Methods section confirms the 'expected escape time' band is obtained by tuning the normalization: 'The lower bound (125 kyr) corresponds to the model shown in Fig. 4. The upper bound (200 kyr) is obtained by changing the normalisation of the model for the entire region to match the Fermi-LAT points above 10 GeV.' The quoted timescale is thus statistically forced by the same data it is claimed to explain, not independently predicted.
full rationale
The paper's central discovery—the extended GeV source J1654–467 and the H I cavity—does not reduce to its inputs. The Fermi-LAT morphology, the H.E.S.S. TeV map, and the GASS III H I data are independent data sets, and the spatial/spectral connection between them is not defined circularly. The H I velocity-window selection involves a near/far distance ambiguity, but that is a systematic/correctness concern rather than a circularity: the paper acknowledges the ambiguity and the chosen windows bracket independent kinematic tracers. No load-bearing uniqueness theorem or ansatz is smuggled in solely via self-citation; the modeling assumptions from Härer et al. (2023) are stated and used as a model framework. The only step approaching circularity is the far-outflow model, where the transport timescale is effectively a renamed fitted parameter: the injection duration and cutoff are adjusted to match the far-region data and then interpreted as the physical escape time from the cluster to the far outflow. Because this is a secondary interpretive claim and the main discovery has independent support, the overall circularity score is moderate rather than high.
Axiom & Free-Parameter Ledger
free parameters (7)
- Electron injection spectral index =
2.25
- Electron acceleration efficiency eta =
0.7% above 0.01 GeV
- Magnetic field strength B =
2 microgauss
- Injection period into far outflow =
0.5-1 Myr
- Last-injection / high-energy cutoff time =
125-200 kyr
- Cavity line-of-sight depth =
70 pc
- Turbulence injection scale R_inj =
1 pc
axioms (6)
- domain assumption The gamma-ray emission from J1654-467 is inverse-Compton radiation from electrons accelerated at the Westerlund 1 wind termination shock, with hadronic emission negligible in the low-density cavity.
- domain assumption The H I velocity windows v_LSR = [-63,-50] and [-50,-37] km/s trace gas at the distance of Westerlund 1.
- standard math Atomic hydrogen is optically thin, with column density conversion X_HI = 1.823e18 cm^-2 / (K km/s).
- domain assumption Superbubble expansion in a stratified Galactic disc produces asymmetric breakout and chimney-like outflows.
- domain assumption Standard non-thermal electron/proton injection efficiencies apply, so proton energy density exceeds electron energy density by a large factor.
- domain assumption Kolmogorov diffusion with B = 2 microgauss and R_inj = 1 pc describes electron transport in the superbubble.
invented entities (1)
-
Nascent cosmic-ray-loaded outflow (chimney) from Westerlund 1
no independent evidence
read the original abstract
Cosmic rays are widely held to drive outflows from star-forming galaxies and profoundly influence galaxy evolution. Direct evidence for cosmic-ray carrying outflows is however lacking. At the same time there is increasing awareness of the importance of massive star clusters in the acceleration of cosmic rays in galaxies. Here we report on the discovery of a nascent outflow driven by the massive star cluster Westerlund 1. Giga-electronvolt gamma-ray emission coincident with a cavity visible in atomic hydrogen traces the emergence of a population of relativistic electrons out of the Galactic Disc. The emission is offset from tera-electronvolt gamma-ray radiation surrounding the cluster, but connects to it smoothly spectrally and spatially. The implied energy density of co-accelerated protons and nuclei, assuming standard non-thermal electron/proton injection efficiencies, is at least an order of magnitude higher than that in the general interstellar medium. These particles therefore have the potential to dynamically influence the outflow. This discovery suggests that cosmic-ray loaded outflows may be a common feature of young massive star clusters, with implications for the transport of cosmic rays into the halo of the Galaxy.
Reference graph
Works this paper leans on
-
[1]
Thompson, T.A., Heckman, T.M.: Theory and Observation of Winds from Star- Forming Galaxies. Annual Review of Astronomy and Astrophysics62, 529–591 (2024) DOI: 10.1146/annurev-astro-041224-011924 arXiv:2406.08561
Pith/arXiv arXiv 2024
-
[2]
Astrophysical Journal Letters816, 19 (2016) DOI: 10.3847/2041-8205/816/2/L19 arXiv:1509.07247
Girichidis, P.,et al.: Launching Cosmic-Ray-driven Outflows from the Magne- tized Interstellar Medium. Astrophysical Journal Letters816, 19 (2016) DOI: 10.3847/2041-8205/816/2/L19 arXiv:1509.07247
Pith/arXiv arXiv 2016
-
[3]
Rathjen, T.-E.,et al.: SILCC VI - Multiphase ISM structure, stellar clustering, and outflows with supernovae, stellar winds, ionizing radiation, and cosmic rays. Monthly Notices of the Royal Astronomical Society504, 1039–1061 (2021) DOI: 10.1093/mnras/stab900 arXiv:2103.14128
Pith/arXiv arXiv 2021
-
[4]
Modak, S., Quataert, E., Jiang, Y.-F., Thompson, T.A.: Cosmic-ray driven galac- tic winds from the warm interstellar medium. Monthly Notices of the Royal Astronomical Society524, 6374–6391 (2023) DOI: 10.1093/mnras/stad2257 arXiv:2302.03701
Pith/arXiv arXiv 2023
-
[5]
Astrophysical Journal964, 99 (2024) DOI: 10.3847/1538-4357/ad1e5c arXiv:2401.04169
Armillotta, L., Ostriker, E.C., Kim, C.-G., Jiang, Y.-F.: Cosmic-Ray Acceleration of Galactic Outflows in Multiphase Gas. Astrophysical Journal964, 99 (2024) DOI: 10.3847/1538-4357/ad1e5c arXiv:2401.04169
Pith/arXiv arXiv 2024
-
[6]
Accepted for publication in Astrophysical Journal(2024) arXiv:2410.06988
Sike, B., Thomas, T., Ruszkowski, M., Pfrommer, C., Weber, M.: Cosmic Ray- Driven Galactic Winds with Resolved ISM and Ion-Neutral Damping. Accepted for publication in Astrophysical Journal(2024) arXiv:2410.06988
Pith/arXiv arXiv 2024
-
[7]
Submitted to Astronomy & Astrophysics(2025) arXiv:2502.02635
Kjellgren, K., et al.: The dynamical impact of cosmic rays in the Rhea mag- netohydrodynamics simulations. Submitted to Astronomy & Astrophysics(2025) arXiv:2502.02635
Pith/arXiv arXiv 2025
-
[8]
Astronomy and Astrophysics Reviews31, 4 (2023) DOI: 10.1007/s00159- 023-00149-2 arXiv:2306.03141
Ruszkowski, M., Pfrommer, C.: Cosmic ray feedback in galaxies and galaxy clusters. Astronomy and Astrophysics Reviews31, 4 (2023) DOI: 10.1007/s00159- 023-00149-2 arXiv:2306.03141
Pith/arXiv arXiv 2023
-
[9]
Astrophysical Journal165, 381 (1971) DOI: 10.1086/150903
Johnson, H.E., Axford, W.I.: Galactic Winds. Astrophysical Journal165, 381 (1971) DOI: 10.1086/150903
-
[10]
Astrophysical Journal196, 107–120 (1975) DOI: 10.1086/153397
Ipavich, F.M.: Galactic winds driven by cosmic rays. Astrophysical Journal196, 107–120 (1975) DOI: 10.1086/153397
doi:10.1086/153397 1975
-
[11]
Breitschwerdt, D., McKenzie, J.F., V¨ olk, H.J.: Galactic winds. I. Cosmic ray and wave-driven winds from the galaxy. Astronomy & Astrophysics245, 79 (1991) 23
1991
-
[12]
Breitschwerdt, D., McKenzie, J.F., V¨ olk, H.J.: Galactic winds. II. Role of the disk-halo interface in cosmic ray driven galactic winds. Astronomy & Astrophysics 269, 54–66 (1993)
1993
-
[13]
Astrophysical Journal218, 148–169 (1977) DOI: 10.1086/155667
McKee, C.F., Ostriker, J.P.: A theory of the interstellar medium: three com- ponents regulated by supernova explosions in an inhomogeneous substrate. Astrophysical Journal218, 148–169 (1977) DOI: 10.1086/155667
doi:10.1086/155667 1977
-
[14]
Ferri` ere, K.M.: The interstellar environment of our galaxy. Reviews of Modern Physics73, 1031–1066 (2001) DOI: 10.1103/RevModPhys.73.1031 arXiv:astro- ph/0106359
arXiv 2001
-
[15]
Astrophysical Journal337, 141 (1989) DOI: 10.1086/167094
Mac Low, M.-M., McCray, R., Norman, M.L.: Superbubble Blowout Dynamics. Astrophysical Journal337, 141 (1989) DOI: 10.1086/167094
doi:10.1086/167094 1989
-
[16]
Gaensler, B.M., Madsen, G.J., Chatterjee, S., Mao, S.A.: The Vertical Structure of Warm Ionised Gas in the Milky Way. Publications of the Astronomical Society of Australia25, 184–200 (2008) DOI: 10.1071/AS08004 arXiv:0808.2550
Pith/arXiv arXiv 2008
-
[17]
Astrophysical Journal345, 372 (1989) DOI: 10.1086/167912
Norman, C.A., Satoru, I.: The Disk-Halo Interaction: Superbubbles and the Struc- ture of the Interstellar Medium. Astrophysical Journal345, 372 (1989) DOI: 10.1086/167912
-
[18]
Nature567, 347–350 (2019) DOI: 10.1038/s41586- 019-1009-6 arXiv:1904.05969
Ponti, G.,et al.: An X-ray chimney extending hundreds of parsecs above and below the Galactic Centre. Nature567, 347–350 (2019) DOI: 10.1038/s41586- 019-1009-6 arXiv:1904.05969
Pith/arXiv arXiv 2019
-
[19]
Nature Astronomy3, 561–567 (2019) DOI: 10.1038/s41550-019-0724- 0 arXiv:1804.02331
Aharonian, F., Yang, R., Wilhelmi, E.: Massive stars as major factories of Galactic cosmic rays. Nature Astronomy3, 561–567 (2019) DOI: 10.1038/s41550-019-0724- 0 arXiv:1804.02331
Pith/arXiv arXiv 2019
-
[20]
Morlino, G., Blasi, P., Peretti, E., Cristofari, P.: Particle acceleration in winds of star clusters. Monthly Notices of the Royal Astronomical Society504, 6096–6105 (2021) DOI: 10.1093/mnras/stab690 arXiv:2102.09217
Pith/arXiv arXiv 2021
-
[21]
Vieu, T., Reville, B.: Massive star cluster origin for the galactic cosmic ray popu- lation at very-high energies. Monthly Notices of the Royal Astronomical Society 519, 136–147 (2023) DOI: 10.1093/mnras/stac3469 arXiv:2211.11625
Pith/arXiv arXiv 2023
-
[22]
Science334, 1103–1107 (2011) DOI: 10.1126/science.1210311
Ackermann, M.,et al.(Fermi-LAT Collaboration): A Cocoon of Freshly Acceler- ated Cosmic Rays Detected by Fermi in the Cygnus Superbubble. Science334, 1103–1107 (2011) DOI: 10.1126/science.1210311
-
[23]
Astronomy & Astrophysics600, 107 (2017) DOI: 10.1051/0004- 6361/201630213 arXiv:1612.02250 24
Yang, R.-Z., Aharonian, F.: Diffuseγ-ray emission near the young massive cluster NGC 3603. Astronomy & Astrophysics600, 107 (2017) DOI: 10.1051/0004- 6361/201630213 arXiv:1612.02250 24
Pith/arXiv arXiv 2017
-
[24]
Astronomy & Astrophysics640, 60 (2020) DOI: 10.1051/0004- 6361/202037518 arXiv:2007.15295
Yang, R.-Z., Wang, Y.: The diffuse gamma-ray emission toward the Galactic mini starburst W43. Astronomy & Astrophysics640, 60 (2020) DOI: 10.1051/0004- 6361/202037518 arXiv:2007.15295
Pith/arXiv arXiv 2020
-
[25]
Sun, X.-N., Yang, R.-Z., Wang, X.-Y.: Diffuseγ-ray emission from the vicinity of young massive star cluster RSGC 1. Monthly Notices of the Royal Astronomical Society494, 3405–3412 (2020) DOI: 10.1093/mnras/staa947 arXiv:2006.02052
Pith/arXiv arXiv 2020
-
[26]
Liu, B., Yang, R.-Z., Chen, Z.: Gamma-ray observation towards the young mas- sive star cluster NGC 6618 in the M17 region. Monthly Notices of the Royal Astronomical Society513, 4747–4753 (2022) DOI: 10.1093/mnras/stac1252 arXiv:2205.06430
Pith/arXiv arXiv 2022
-
[27]
Nature Astronomy8, 530–537 (2024) DOI: 10.1038/s41550-023-02168-6 arXiv:2407.07509
Peron, G., Casanova, S., Gabici, S., Baghmanyan, V., Aharonian, F.: The contribution of winds from star clusters to the Galactic cosmic-ray popula- tion. Nature Astronomy8, 530–537 (2024) DOI: 10.1038/s41550-023-02168-6 arXiv:2407.07509
Pith/arXiv arXiv 2024
-
[28]
Collaboration): Revisiting the Westerlund 2 field with the HESS telescope array
Abramowski, A.,et al.(H.E.S.S. Collaboration): Revisiting the Westerlund 2 field with the HESS telescope array. Astronomy & Astrophysics525, 46 (2011) DOI: 10.1051/0004-6361/201015290 arXiv:1009.3012
Pith/arXiv arXiv 2011
-
[29]
Abeysekara, A. U.,et al.(HA WC Collaboration): HA WC observations of the acceleration of very-high-energy cosmic rays in the Cygnus Cocoon. Nature Astronomy5, 465–471 (2021) DOI: 10.1038/s41550-021-01318-y arXiv:2103.06820
Pith/arXiv arXiv 2021
-
[30]
Aharonian, F.,et al.(H.E.S.S. Collaboration): A deep spectromorphological study of theγ-ray emission surrounding the young massive stellar cluster Westerlund 1. Astronomy & Astrophysics666, 124 (2022) DOI: 10.1051/0004-6361/202244323 arXiv:2207.10921
Pith/arXiv arXiv 2022
-
[31]
Astrophysical Journal Letters970, 21 (2024) DOI: 10.3847/2041-8213/ad5e67 arXiv:2407.16219
Aharonian, F.,et al.(HESS Collaboration): Very-high-energyγ-Ray Emis- sion from Young Massive Star Clusters in the Large Magellanic Cloud. Astrophysical Journal Letters970, 21 (2024) DOI: 10.3847/2041-8213/ad5e67 arXiv:2407.16219
Pith/arXiv arXiv 2024
-
[32]
Science Bulletin69, 449–457 (2024) DOI: 10.1016/j.scib.2023.12.040 arXiv:2310.10100
Cao, Z.,et al.(LHAASO Collaboration): An ultrahigh-energyγ-ray bub- ble powered by a super PeVatron. Science Bulletin69, 449–457 (2024) DOI: 10.1016/j.scib.2023.12.040 arXiv:2310.10100
arXiv 2024
-
[33]
Cao, Z.,et al.(LHAASO Collaboration): Observation of theγ-ray emission from W43 with LHAASO. Science China Physics, Mechanics & Astronomy68, 279502 (2025) DOI: 10.1007/s11433-024-2477-9 arXiv:2408.09905 25
arXiv 2025
-
[34]
Navarete, F., Damineli, A., Ramirez, A.E., Rocha, D., Almeida, L.: Distance and age of the massive stellar cluster Westerlund 1. I. Parallax method using Gaia- EDR3. Monthly Notices of the Royal Astronomical Society516, 1289–1301 (2022) DOI: 10.1093/mnras/stac2374 arXiv:2204.09414
arXiv 2022
-
[35]
Astronomy & Astrophysics664, 146 (2022) DOI: 10.1051/0004-6361/202142985 arXiv:2204.00422
Negueruela, I.,et al.: Westerlund 1 under the light of Gaia EDR3: Distance, isolation, extent, and a hidden population. Astronomy & Astrophysics664, 146 (2022) DOI: 10.1051/0004-6361/202142985 arXiv:2204.00422
Pith/arXiv arXiv 2022
-
[36]
Astronomy & Astrophysics 434, 949–969 (2005) DOI: 10.1051/0004-6361:20042413 arXiv:astro-ph/0504342
Clark, J.S., Negueruela, I., Crowther, P.A., Goodwin, S.P.: On the massive stellar population of the super star cluster Westerlund 1. Astronomy & Astrophysics 434, 949–969 (2005) DOI: 10.1051/0004-6361:20042413 arXiv:astro-ph/0504342
Pith/arXiv arXiv 2005
-
[37]
Crowther, P.A., Hadfield, L.J., Clark, J.S., Negueruela, I., Vacca, W.D.: A cen- sus of the Wolf–Rayet content in Westerlund 1 from near-infrared imaging and spectroscopy. Monthly Notices of the Royal Astronomical Society372, 1407–1424 (2006) DOI: 10.1111/j.1365-2966.2006.10952.x arXiv:astro-ph/0608356
arXiv 2006
-
[38]
Astronomy & Astrophysics478, 137–149 (2008) DOI: 10.1051/0004- 6361:20077579 arXiv:0711.1624
Brandner, W.,et al.: Intermediate to low-mass stellar content of Wester- lund 1. Astronomy & Astrophysics478, 137–149 (2008) DOI: 10.1051/0004- 6361:20077579 arXiv:0711.1624
Pith/arXiv arXiv 2008
-
[39]
Astrophysical Journal912, 16 (2021) DOI: 10.3847/1538- 4357/abec44 arXiv:2103.02609
Beasor, E.R., Davies, B., Smith, N., Gehrz, R.D., Figer, D.F.: The Age of Westerland 1 Revisited. Astrophysical Journal912, 16 (2021) DOI: 10.3847/1538- 4357/abec44 arXiv:2103.02609
Pith/arXiv arXiv 2021
-
[40]
Astrophysical Journal650, 203 (2006) DOI: 10.1086/507175 arXiv:astro-ph/0606492
Muno, M.P.,et al.: Diffuse, Nonthermal X-Ray Emission from the Galac- tic Star Cluster Westerlund 1. Astrophysical Journal650, 203 (2006) DOI: 10.1086/507175 arXiv:astro-ph/0606492
Pith/arXiv arXiv 2006
-
[41]
Astronomy & Astrophysics671, 4 (2023) DOI: 10.1051/0004-6361/202245444 arXiv:2301.10496
H¨ arer, L.K., Reville, B., Hinton, J., Mohrmann, L., Vieu, T.: Understanding the TeVγ-ray emission surrounding the young massive star cluster Westerlund 1. Astronomy & Astrophysics671, 4 (2023) DOI: 10.1051/0004-6361/202245444 arXiv:2301.10496
Pith/arXiv arXiv 2023
-
[42]
Atwood, W. B.,et al.(Fermi-LAT Collaboration): The Large Area Telescope on the Fermi Gamma-ray Space Telescope Mission. Astrophysical Journal697, 1071 (2009) DOI: 10.1088/0004-637X/697/2/1071 arXiv:0902.1089
Pith/arXiv arXiv 2009
-
[43]
Baumgartner, V., Breitschwerdt, D.: Superbubble evolution in disk galaxies. I. Study of blow-out by analytical models. Astronomy & Astrophysics557, 140 (2013) DOI: 10.1051/0004-6361/201321261 arXiv:1402.0194
Pith/arXiv arXiv 2013
-
[44]
Update: improved correction for instrumental effects and new data release
Kalberla, P.M.W., Haud, U.: GASS: The Parkes Galactic All-Sky Survey. Update: improved correction for instrumental effects and new data release. Astronomy & Astrophysics578, 78 (2015) DOI: 10.1051/0004-6361/201525859 arXiv:1505.01011 26
Pith/arXiv arXiv 2015
-
[45]
Hahn, J.: GAMERA - A Modular Framework For Spectral Modeling In VHE Astronomy. In: Proc. 34th Int. Cosmic Ray Conf. (ICRC2015), p. 917 (2015). DOI: 10.22323/1.236.0917
-
[46]
Astrophysics Source Code Libraryascl:2203.007(2022)
Hahn, J., Romoli, C., Breuhaus, M.: GAMERA: Source modeling in gamma astronomy. Astrophysics Source Code Libraryascl:2203.007(2022). https:// ascl.net/2203.007
2022
-
[47]
Astrophysical Journal Supplement Series247, 33 (2020) DOI: 10.3847/1538-4365/ab6bcb arXiv:1902.10045
Abdollahi, S.,et al.(Fermi-LAT Collaboration): Fermi Large Area Telescope Fourth Source Catalog. Astrophysical Journal Supplement Series247, 33 (2020) DOI: 10.3847/1538-4365/ab6bcb arXiv:1902.10045
Pith/arXiv arXiv 2020
-
[48]
Astrophysical Journal Supplement Series260, 53 (2022) DOI: 10.3847/1538-4365/ac6751 arXiv:2201.11184
Abdollahi, S.,et al.(Fermi-LAT Collaboration): Incremental Fermi Large Area Telescope Fourth Source Catalog. Astrophysical Journal Supplement Series260, 53 (2022) DOI: 10.3847/1538-4365/ac6751 arXiv:2201.11184
Pith/arXiv arXiv 2022
-
[49]
arXiv e-prints (2023) arXiv:2307.12546
Ballet, J., Bruel, P., Burnett, T.H., Lott, B., The Fermi-LAT collaboration: Fermi Large Area Telescope Fourth Source Catalog Data Release 4 (4FGL-DR4). arXiv e-prints (2023) arXiv:2307.12546
Pith/arXiv arXiv 2023
-
[50]
IEEE Transactions on Automatic Control19, 716–723 (1974) DOI: 10.1109/TAC.1974.1100705
Akaike, H.: A new look at the statistical model identification. IEEE Transactions on Automatic Control19, 716–723 (1974) DOI: 10.1109/TAC.1974.1100705
arXiv 1974
-
[51]
Astronomical Journal129, 1993–2006 (2005) DOI: 10.1086/428488 arXiv:astro-ph/0412641
Manchester, R.N., Hobbs, G.B., Teoh, A., Hobbs, M.: The Australia Telescope National Facility Pulsar Catalogue. Astronomical Journal129, 1993–2006 (2005) DOI: 10.1086/428488 arXiv:astro-ph/0412641
Pith/arXiv arXiv 1993
-
[52]
Astrophysical Journal843, 139 (2017) DOI: 10.3847/1538- 4357/aa775a arXiv:1702.00476
Ackermann, M.,et al.(Fermi-LAT Collaboration): Search for Extended Sources in the Galactic Plane Using Six Years of Fermi-Large Area Telescope Pass 8 Data above 10 GeV. Astrophysical Journal843, 139 (2017) DOI: 10.3847/1538- 4357/aa775a arXiv:1702.00476
Pith/arXiv arXiv 2017
-
[53]
Ohm, S., Hinton, J.A., White, R.:γ-ray emission from the Westerlund 1 region. Monthly Notices of the Royal Astronomical Society434, 2289–2294 (2013) DOI: 10.1093/mnras/stt1170 arXiv:1306.5642
Pith/arXiv arXiv 2013
-
[54]
Astronomy & Astrophysics656, 81 (2021) DOI: 10.1051/0004- 6361/202141553 arXiv:2109.07443
Bruel, P.: A new method to perform data-model comparison inFermi- LAT analysis. Astronomy & Astrophysics656, 81 (2021) DOI: 10.1051/0004- 6361/202141553 arXiv:2109.07443
Pith/arXiv arXiv 2021
-
[55]
Astronomy & Astrophysics695, 3 (2025) DOI: 10.1051/0004- 6361/202451964 arXiv:2501.12990
Haubner, K.,et al.: eROSITA X-ray analysis of the PeVatron candidate Westerlund 1. Astronomy & Astrophysics695, 3 (2025) DOI: 10.1051/0004- 6361/202451964 arXiv:2501.12990
Pith/arXiv arXiv 2025
-
[56]
Astrophysical Journal885, 131 (2019) DOI: 10.3847/1538-4357/ab4a11 arXiv:1910.03357 27
Reid, M.J.,et al.: Trigonometric Parallaxes of High-mass Star-forming Regions: Our View of the Milky Way. Astrophysical Journal885, 131 (2019) DOI: 10.3847/1538-4357/ab4a11 arXiv:1910.03357 27
Pith/arXiv arXiv 2019
-
[57]
Astrophysical Journal699, 1153 (2009) DOI: 10.1088/0004-637X/699/2/1153 arXiv:0905.0723
Roman-Duval, J.,et al.: Kinematic Distances to Molecular Clouds identified in the Galactic Ring Survey. Astrophysical Journal699, 1153 (2009) DOI: 10.1088/0004-637X/699/2/1153 arXiv:0905.0723
Pith/arXiv arXiv 2009
-
[58]
Astronomy & Astro- physics625, 10 (2019) DOI: 10.1051/0004-6361/201935656 arXiv:1904.05721
Abuter, R.,et al.(GRA VITY Collaboration): A geometric distance measurement to the Galactic center black hole with 0.3% uncertainty. Astronomy & Astro- physics625, 10 (2019) DOI: 10.1051/0004-6361/201935656 arXiv:1904.05721
Pith/arXiv arXiv 2019
-
[59]
Astronomy & Astrophysics397, 133–146 (2003) DOI: 10.1051/0004- 6361:20021504
Russeil, D.: Star-forming complexes and the spiral structure of our Galaxy. Astronomy & Astrophysics397, 133–146 (2003) DOI: 10.1051/0004- 6361:20021504
doi:10.1051/0004- 2003
-
[60]
Astrophysical Journal760, 65 (2012) DOI: 10.1088/0004-637X/760/1/65 arXiv:1209.6427
Fok, T.K.T., Nakashima, J., Yung, B.H.K., Hsia, C., Deguchi, S.: Maser Observa- tions of Westerlund 1 and Comprehensive Considerations on Maser Properties of Red Supergiants Associated with Massive Clusters. Astrophysical Journal760, 65 (2012) DOI: 10.1088/0004-637X/760/1/65 arXiv:1209.6427
Pith/arXiv arXiv 2012
-
[61]
Astronomy & Astrophysics468, 993–1000 (2007) DOI: 10.1051/0004-6361:20077309 arXiv:0704.3073
Kothes, R., Dougherty, S.M.: The distance and neutral environment of the massive stellar cluster Westerlund 1. Astronomy & Astrophysics468, 993–1000 (2007) DOI: 10.1051/0004-6361:20077309 arXiv:0704.3073
Pith/arXiv arXiv 2007
-
[62]
Hou, L.G.: The spiral structure in the Solar neighbourhood. Frontiers in Astronomy and Space Sciences8, 103 (2021) DOI: 10.3389/fspas.2021.671670 arXiv:2110.04446
arXiv 2021
-
[63]
Radia- tion fields and application to high-energy astrophysics
Popescu, C.C.,et al.: A radiation transfer model for the Milky Way: I. Radia- tion fields and application to high-energy astrophysics. Monthly Notices of the Royal Astronomical Society470, 2539–2558 (2017) DOI: 10.1093/mnras/stx1282 arXiv:1705.06652 28
Pith/arXiv arXiv 2017
discussion (0)
Sign in with ORCID, Apple, or X to comment. Anyone can read and Pith papers without signing in.