cosmic ray acceleration in clusters of galaxies · pdf filecosmic ray acceleration in clusters...
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Cosmic Ray acceleration in clusters of galaxies
Gianfranco Brunetti Istituto di Radioastronomia – INAF, Bologna, ITALY
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Outline
NT components (CRe,CRp,B) in galaxy clusters : observations Physics and dynamics of CR in galaxy clusters Present constraints on CR protons **new** Physics of NT Mpc scale diffuse radio emission from galaxy clusters: Relics & Halos Shocks and turbulent acceleration in clusters **Future** at low radio frequencies & gamma rays
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Clusters of galaxies: the largest gravitational structures in the Universe (M≈1014-1015Msun , RV≈ 2-3 Mpc)
Coma Cluster Galaxy cluster mass:
Barions
Dark Matter 70%
10% of stars in galaxies
15-20% of hot diffuse gas
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Clusters of galaxies: the largest gravitational structures in the Universe (M≈1014-1015Msun , RV≈ 2-3 Mpc)
Coma Cluster Galaxy cluster mass:
Barions
Dark Matter 70%
10% of stars in galaxies
15-20% of hot diffuse gas
≈30-300 galaxies
n≈10-3cm-3
T≈107-108K
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Coma Cluster
Feretti +al.1998
1 Mpc
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Coma Cluster
Radio Halo Radio Relic
Feretti +al.1998
Bridge
1 Mpc
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Coma Cluster: high energy NT
Radio Halo
Radio Relic
Fusco-Femiano et al.99 Rephaeli et al.99
Wik et al. 2009
Ajello et al. 2008; Fujita et al. 2009; Wik et al 2009; Eckert et al. 2008; Perez-Torres et al. 2009; Colafrancesco & Marchegiani 2009; Nevalainen et al 2009, Murgia et al 10, Wik et al 11
Radio Relic
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Lrad -> (Ue , UB) -> KeB2
LHE -> (Ue , Uph) -> KeUph
Lrad /LHE ≈ UB/Uph _-> B
Inverse Compton Emission from GC ??
B
ph (CMB)
Syn
IC
B > 0.1-0.2 μG
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Clarke et al 2001 Murgia et al 2004
B in Galaxy Clusters (also Bruggen,Dolag,Neronov lectures) B ≈ few μG Λc ≈ few-50 kpc
RM probe turbulent motions in the IGM
Bonafede et al 2010 Govoni et al 05
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Injection & Dynamics of CR in GC
Cosmological Shocks (e.g. Sarazin 1999, Miniati et al. 2001, Blasi 2001, Gabici & Blasi 2003, Ryu et al. 2003, Pfrommer et al. 2006, 2008, Hoeft & Bruggen 2007, Skillman et al. 2008, Vazza, Brunetti, Gheller 2009, 2010, etc..)
AGN, Galactic Winds (e.g. Ensslin et al. 1998; Voelk & Atoyan 1999)
Reconnection (turbulent .. Lazarian & Vishniac 99) (e.g. Brunetti & Lazarian 2011, DeGouveia dal Pino et al 2011,.. )
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Physics of CR Leptons
Particle Collisions
(dE/dt) / mec2 = b = rate of energy losses in units of mec2
Photon Collisions
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Physics of CR Leptons
(dE/dt) ~ E / Time ~ mec2 b
The life-time of electrons depends on quantities that can be measured
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Physics of CR Hadrons
Xm=
like leptons
CR protons more energetics than thermal electrons: Coulomb scattering
Collisions between CR & thermal protons
~30 Gyrs !
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Das Bild kann zurzeit nicht angezeigt werden. CR are confined in GC Voelk et al 1996; Berezinsky, Blasi, Ptuskin 1997; …
CR protons are long living and accumulated Voelk et al 1996; Berezinsky, Blasi, Ptuskin 1997; Ensslin et al 1998; … CR electrons are short living particles and accumulated at γ≈100-300 Sarazin 1999; Petrosian 2001; …
Physics of Cosmic Rays
Diffusion time
Blasi, Gabici, Brunetti 07
D(GeV) ≈1028-1029 cm2/s << 1031cm2/s (Schlickeiser +al 1987, Blasi+Colafrancesco 1999, GB +al 2011…)
CRp
CRe
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Acceleration & transport of CR : simulations Pfrommer et al. 2007, 08 : simulations of CR+IGM +CR transport/advection - Acceleration efficiency is the “free” parameter - Diffusion time >> advection time
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CRp
CRe
B
ph
Syn
IC
Miniati 2003
Radiation from Cosmic Rays in GC
FERMI
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CRe
B
ph
Syn
IC
Wolfe +al 2008
p-p p-γ
Radiation from Cosmic Rays in GC
CRp
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Limits from gamma rays
Aharonian + al. 2009
Reimer +al. 2003; Pfrommer & Ensslin 2004
A 85 : Ecr/Eth < 6-15% (hard spectra)
Coma : Ecr/Eth < 12%
Coma : Ecr/Eth < 5-10% (hard spectra)
H.E.S.S.
VERITAS (Perkins +al. 2008)
EGRET
Perseus : Ecr/Eth < 4% (hard spectra) MAGIC (Aleksic +al. 2010)
Lγ,π ~ f(δ) <ECR> <Eth/T> Vγ
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Gamma rays : energy content of CRp
Ackermann et al 2010
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CRp: limits from Radio
Assuming that secondary particles are injected in the IGM, their synchrotron emission should be smaller than upper limits to the diffuse radio emission.
δ=2.9
δ=2.1
Reimer et al 04, Brunetti et al. 07,08
limits on : (B , ECRp) , δ
N(p)=K p -δ
Lγ,π ~ fγ(δ) <ECR> <Eth/T> Vγ
LR ~ fR(δ)<ECR> <Eth/T> <Bδ/2+1/(B2+Bcmb2)>VR
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CRp: limits from Radio
Assuming that secondary particles are injected in the IGM, their synchrotron emission should be smaller than upper limits to the diffuse radio emission.
δ=2.9
δ=2.1
Reimer et al 04, Brunetti et al. 07,08
limits on : (B , ECRp) , δ
N(p)=K p -δ
Lγ,π ~ fγ(δ) <ECR> <Eth/T> Vγ
LR ~ fR(δ)<ECR> <Eth/T> <Bδ/2+1/(B2+Bcmb2)>VR
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Reimer et al. (2003) Reimer et al. (2004) Pfrommer & Ensslin (2004) Perkins et al. (2006) Brunetti et al. (2007) Brunetti et al. (2008) Perkins et al. (2008) Aharonian et al. (2008 a,b) Aleksic et al. (2009) Ackermann et al (2010)
Additional limits from cluster dynamics (e.g. Churazov et al. 2008; Lagana et al 2009) constrain ECR+EB+Eturb below 10% ( < 30% ) Ethermal.
EGRET
FERMI
Gamma + Radio observations independently suggest that non-thermal components are dynamically NOT important (% level)
Energy content of CRp
ASKAP/EMU
< >
RM
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Non-thermal emission from GC
Abell 3376 Bagchi et al. 2005
Abell 754 Henry et al. 2004
Both Halos & Relics have steep spectrum, F(ν)=Foν-, with ≈1.3
Abell 2163 Feretti et al. 2001
Radio Relics Radio Halos
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Non-thermal emission from GC
Abell 3376 Bagchi et al. 2005
Abell 754 Henry et al. 2004
Both Halos & Relics have steep spectrum, F(ν)=Foν-, with ≈1.3
Abell 2163 Feretti et al. 2001
Radio Relics Radio Halos
Unpolarised, follow the X-ray brightness (originate from cluster central regions)
Polarised, no correlation with X-ray brightness (form in cluster outskirts)
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Connecting LSS formation and ………… NT-physics
of IGM merger history
clusters increase their mass via merger with smaller subclusters
e±, p
TURBULENCE reaccelerates fossil e± and secondaries e± on Mpc scales
B SHOCKS accelerate e± , pcr
π± e±
pcr pth π0 γ rays
?
?
(eg., Brunetti et al. 2001, 2004, 2009; Petrosian 2001; Miniati et al. 2001; Fujita et al. 2003; Ryu et al. 2003; Gabici & Blasi 2003; Berrington & Dermer 2003; Pfrommer & Ensslin 2004; Brunetti & Blasi 2005; Cassano & Brunetti 2005; Cassano et al. 2006; Brunetti & Lazarian 2007; Hoeft & Bruggen 2007; Pfrommer et al. 2008; Petrosian & Bykov 2008, …)
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Connecting LSS formation and ………… NT-physics
of IGM merger history
clusters increase their mass via merger with smaller subclusters
e±, p
TURBULENCE reaccelerates fossil e± and secondaries e± on Mpc scales
B SHOCKS accelerate e± , pcr
π± e±
pcr pth π0 γ rays
?
?
(eg., Brunetti et al. 2001, 2004, 2009; Petrosian 2001; Miniati et al. 2001; Fujita et al. 2003; Ryu et al. 2003; Gabici & Blasi 2003; Berrington & Dermer 2003; Pfrommer & Ensslin 2004; Brunetti & Blasi 2005; Cassano & Brunetti 2005; Cassano et al. 2006; Brunetti & Lazarian 2007; Hoeft & Bruggen 2007; Pfrommer et al. 2008; Petrosian & Bykov 2008,…)
Shocks: acceleration or reacceleration
?
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Connecting LSS formation and ………… NT-physics
of IGM merger history
clusters increase their mass via merger with smaller subclusters
e±, p
TURBULENCE reaccelerates fossil e± and secondaries e± on Mpc scales
B SHOCKS accelerate e± , pcr
π± e±
pcr pth π0 γ rays
?
?
(eg., Brunetti et al. 2001, 2004, 2009; Petrosian 2001; Miniati et al. 2001; Fujita et al. 2003; Ryu et al. 2003; Gabici & Blasi 2003; Berrington & Dermer 2003; Pfrommer & Ensslin 2004; Brunetti & Blasi 2005; Cassano & Brunetti 2005; Cassano et al. 2006; Brunetti & Lazarian 2007; Hoeft & Bruggen 2007; Pfrommer et al. 2008; Petrosian & Bykov 2008, …)
Shocks: acceleration or reacceleration
?
Turbulence?
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Connecting LSS formation and ………… NT-physics
of IGM merger history
clusters increase their mass via merger with smaller subclusters
e±, p
TURBULENCE reaccelerates fossil e± and secondaries e± on Mpc scales
B SHOCKS accelerate e± , pcr
π± e±
pcr pth π0 γ rays
?
?
(eg., Brunetti et al. 2001, 2004, 2009; Petrosian 2001; Miniati et al. 2001; Fujita et al. 2003; Ryu et al. 2003; Gabici & Blasi 2003; Berrington & Dermer 2003; Pfrommer & Ensslin 2004; Brunetti & Blasi 2005; Cassano & Brunetti 2005; Cassano et al. 2006; Brunetti & Lazarian 2007; Hoeft & Bruggen 2007; Pfrommer et al. 2008; Petrosian & Bykov 2008, …)
Shocks: acceleration or reacceleration
?
Turbulence?
Relevance of secondary particles ?
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Cosmological Shocks Natural consequence of the hierarchical process of LSS formation
Vazza et al 2009
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Shocks in Galaxy Clusters
Vazza, Brunetti, Gheller 2009
Miniati et al. 2001; Ryu et al. 2003; Pfrommer et al. 2006,08; Hoeft & Bruggen 2007; Skillman et al. 2008,11 Vazza et al. 2009, 11
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Shocks in Galaxy Clusters
Markevitch et al 05
Shocks are responsible for the heating of the IGM
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Shock—Relic connection Bagchi+al. 2002, Science
van Weeren+al. 2010, Science
Abell 3667
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Shock Acceleration: Radio Relics (Ensslin et al 1998, Roettiger et al. 1999, Sarazin 1999, …)
Abell 3667
time/distance
lR ≈ Vd τe(ν) ≈ 100 kpc
Log(γ)
Log
N(γ)
-δ
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Width of Relics & constraints on B
Markevitch et al 2005
γ ≈ csyn (ν/B)1/2
Vd ≈ csM(M2+3)/4M2 Width of Relic
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Diffuse Relativistic Plasmas: RRI
Van Weeren et al., 10
From Heft, conference in Bangalore
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Mach numbers in galaxy clusters Vazza, Brunetti, Gheller 2009
Semi-analytics : Gabici & Blasi 2003 Berrington & Dermer 2003 some agreement…
Pfrommer et al. 2008
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Kang & Jones 2007
Pfrommer et al. 2006, 08
Vazza, Brunetti, Gheller 2009 Uncertainties in CR acceleration
SN
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Kang & Jones 2007
Kang & Jones 2002
CR acceleration or REacceleration?
Galaxy clusters are unique labs to study par t icle accelerat ion
at weak & LS shocks
Merger shocks have M=1.5-3. Reacceleration of pre-existing relativistic electrons at these shocks is efficient (eg. Kang & Ryu 11)
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Radio Halos as “labs” for CR acceleration in GC
Abell 2163 Feretti et al. 2001
L2 ~ D x t
Tdiff (~1010 yr) >> Tcool (~108 yr)
“in situ” (re)acceleration or injection of CR electrons …
(eg. Jaffe 1977)
electrons
diffusion (Mpc)
1 Mpc
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Statistics of Radio Halos
NVSS GMRT
NVSS data (from Giovannini et al. 1999) and deep GMRT observations.
0.41±0.11 for Lx>1044.9 erg/s
0.08±0.04 for Lx<1044.9 erg/s
(Venturi et al. 2007, 2008; Cassano et al.2008)
Cassano et al.2008
≈ 1/3
≈ 1/10
Cassano et al 08
≈1/10
≈1/3
?
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Cluster mergers - radio halos connection Venturi et al 2007,08
Brunetti et al 2007,09
Cassano et al 2010 ApJ 721 L82
The radio bimodality has a correspondence in terms of dynamical segregation
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Origin of Radio Halos: turbulence ?
Brunetti et al 2007 Venturi et al 2007,08
Das Bild kann zurzeit nicht angezeigt werden.
protons
electrons
REacceleration models (eg Brunetti et al 01, Petrosian 01, …) A mechanisms distributed on Mpc scales channels a fraction of the gravitational energy dissipated during mergers into high energy particles Turbulence ??
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Schlickeiser +al. 1987 (Coma)
F(ν)
Radio Halos : are they generated by “inefficient” mechanism of CRe acceleration ?
Thierbach et al. 2003
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Schlickeiser +al. 1987 (Coma)
Evidence of break in the spectrum of the emitting electrons at energies of few GeV
Re-acceleration
losses
F(ν)
acceleration
Radio Halos : are they generated by “inefficient” mechanism of CRe acceleration ?
Thierbach et al. 2003
τacc≈τloss
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Schlickeiser +al. 1987 (Coma)
Re-acceleration
losses
F(ν)
acceleration
Radio Halos : are they generated by “inefficient” mechanism of CRe acceleration ?
Thierbach et al. 2003
Acceleration time-scale ≈108 years
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Schlickeiser +al. 1987 (Coma)
F(ν)
Radio Halos : are they generated by “inefficient” mechanism of CRe acceleration ?
Thierbach et al. 2003
Acceleration time-scale ≈108 years
> 107yrs
eg., “classical” Fermi II
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+ -
u u
λ
Second order Fermi Mechanisms (Fermi 1949)
Frequency of collisions:
Energy gain per collisions:
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transport diffusion
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Acceleration is sensitive to our model of turbulence
Stochastic particle acceleration due to particle-mode coupling
(Book reviews : Melrose 1980, Berezinskii et al 1990, Schlickeiser 2002)
Stochastic acceleration of fast particles diffusing in turbulence (Ptuskin 1988)
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Acceleration is sensitive to our model of turbulence
Transit Time Damping (TTD)
Interaction btw magnetic moment of particle and parallel gradient of B
Suitable for IGM !
Isotropic fast modes (Cassano & Brunetti 05, Yan et al 10,
Brunetti & Lazarian 07, 11)
ω-k//v//=0
Stochastic particle acceleration due to particle-mode coupling
(Book reviews : Melrose 1980, Berezinskii et al 1990, Schlickeiser 2002)
Stochastic acceleration of fast particles diffusing in turbulence (Ptuskin 1988)
Gyroresonance
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Waves spectra
Proton spectra Secondary electrons
Primary electrons
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Spectra of radio halos & turbulence
0.3 1.4 GHz
more efficient
less efficient
Steepening frequency
Χ ≈1/τacc
Mergers between M>1015Msun
Mergers between M<1015Msun
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Big jumps = major mergers Small jumps = minor mergers
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Observed spectra of radio halos & turbulence
0.3 1.4 GHz
less efficient
Steepening frequency
Χ ≈1/τacc
Cassano, GB, Setti (2006)
Radio Halos with very steep spectrum in the classical radio band must exist
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=1.9
=1.5
N(E)=k E-4.8
Ee=3-5 GeV
Rad
io P
ower
Frequency
Turbulent acceleration?
Acceleration time-scale ≈2.5 x 108 years
Dallacasa et al 2009
Brunetti +al 2008, Nature 455, 944
GMRT 240 MHz
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LOFAR … Cassano et al 2010
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Gamma rays : energy content of CRp & origin of Radio Halos
< >
Jeltema & Profumo 2010
RM
Lγ,π ~ fγ(δ) <ECR> <Eth/T> Vγ
LR ~ fR(δ)<ECR> <Eth/T> <Bδ/2+1/(B2+Bcmb2)>VR
LR/ Lγ,π -> <Bδ/2+1/(B2+Bcmb
2)> Also Donnert et al 10, Brunetti et al …
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Turbulent models and Coma SED Bonafede et al 2010
Etur ≈10 % Eth @k-1~100 kpc ECR = 3 % Eth (flat profile)
Suzaku
EGRET FERMI
NHXM, ASTRO-H
CTA
Brunetti & Lazarian 11
turbulence
secondaries
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Additional processes
Suzaku
EGRET FERMI
NHXM, ASTRO-H
CTA
Inoue et al 05 UHEp-γ
Pinzke & Pfrommer 10
If B is smaller than that estimated from RM (reasonable?) … more gamma rays
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