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HARPS ... North Geneva Observatory, Switzerland Francesco Pepe et al.
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HARPS ... North

Feb 05, 2016

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HARPS ... North. Francesco Pepe et al. Geneva Observatory, Switzerland. What’s HARPS?. Fiber fed, cross-disperser echelle spectrograph Spectral resolution: geometrical 84’000, optical 115’000 Field: 1 arcsec on the sky (HARPS-N: 0.9 arcsec!) Wavelength range: 383 nm - 690 nm - PowerPoint PPT Presentation
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Page 1: HARPS ... North

HARPS ... North

Geneva Observatory, SwitzerlandFrancesco Pepe et al.

Page 2: HARPS ... North

What’s HARPS?Fiber fed, cross-disperser echelle spectrographSpectral resolution: geometrical 84’000, optical 115’000

Field: 1 arcsec on the sky (HARPS-N: 0.9 arcsec!)Wavelength range: 383 nm - 690 nm

Sampling: 4 px per geometrical SE (3.3 real)Environmental control

Drift measurement via simultaneous thorium

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Page 4: HARPS ... North

The Doppler measurement

cross-correlation mask

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Error sources

Stellar noise (or any other object)Contaminants (Earth’s atmosphere, moon, etc.)

Instrumental noise✴Calibration accuracy (any technique)✴Instrumental stability (from calibration to

measurement)

Photon noise

Page 6: HARPS ... North

Stellar “noise”: p-modes

- 2 . 5

- 2

- 1 . 5

- 1

- 0 . 5

0

0 . 5

1

1 . 5

2 3 2 4 2 5 2 6 2 7 2 8 2 9 3 0 3 1

T i m e [ h r s ]

Dispersion = 0.52 m/s

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Stellar “noise”:p-modes

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Stellar “noise”: Activity

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Contaminants: Atmosphere

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Photon “noise”

Is NOT only SNR !!!!

Spectral resolutionSpectral type

Stellar rotation

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Contaminants: Close-by objects

Bad seeing Good seeing

R V

R V

Fiber entrance

R V

RV

Large contamination

by secondary spectrum

Small contamination

by secondary spectrum

Possible dispersion up to several 100 m/s

Page 12: HARPS ... North

Flux

Photon “noise”:Spectral information

Page 13: HARPS ... North

Photon “noise”:Spectral resolution

Page 14: HARPS ... North

Photon “noise”:Stellar rotation

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Instrumental errors

External✴Illumination of the spectrograph

Internal✴“Motion” of the spectrum on the detector

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Limitations:Telescope centering and guiding

Slit spectrograph

Δ RV

1 arcsec

Stored guiding image for QC

Page 17: HARPS ... North

Limitations:Light-feeding

Fiber-fed spectrograph

Fiber entrance

Fiber exit

Image scrambler

Guiding error:

0.5’’ → 2-3 m/s

for a fiber-fed spectrograph

Page 18: HARPS ... North

ΔRV = 1 m/s

Δλ= 0.00001 A

15 nm

1/1000 pixel

ΔRV =1 m/s

ΔT = 0.01 K

Δp = 0.01 mBar

Vacuum operation

Temperature control

Instrumental stability

Page 19: HARPS ... North

Design ElementsFiber feed (mandatory for this techniques)Stable enviroment (gravity, vibrations, etc.)

Image ScramblingNo moving or sensitive parts after fiber

SIMPLE and ROBUST optomechanics“Best” (reasonably) achievable env. control

✴Vacuum operation✴Thermal control

High spectral resolution

Page 20: HARPS ... North

Instrumental stability

Page 21: HARPS ... North

Line (and Instrumental) stability

Absolute position on the CCD of a Th line over one month

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Object

ThAr

Simultaneous reference

Page 23: HARPS ... North

Object fiber

RV0

ThAr reference

Object spectrum ThAr spectrum

RV0

Wavelength calibration

Page 24: HARPS ... North

Object fiber

RV0

ThAr referen

ce

Object spectrum ThAr spectrum

RV0

Measurement

RV (object) = -RV (measured)

RV (measured)

RV(drift)

RV(drift)

Page 25: HARPS ... North

Simultaneous reference

Page 26: HARPS ... North

The wavelength calibration

px

Page 27: HARPS ... North

Instrumental errors: Calibration

pixel-position precision✴photon noise✴blends✴ pixel inhomogeneities, block stitching

errors

accuracy of the wavelength standard✴systematic errors, Atlas, RSF✴instabilities (time, physical conditions: T,

p, I)

accuracy of the fit algorithm

Page 28: HARPS ... North

Calibration: The problem of blends

Isolated lines are very rare!

Fit neighbouring lines

simultaneously with multiple

Gaussians

Page 29: HARPS ... North

But HARPS-N is also ...

... a software concept delivering full precision observables:

Scheduling many observations efficientlyFull quality pipeline available at the telescopeFully automatic, in “near” realtime, RV computationLink to data analysis

Continuous improvements and follow-up

Page 30: HARPS ... North

Limiting factors and possible improvements

New calibration (and sim. reference) source

Perfect guiding and/or scrambling, good IQ neededImprove detector stability (mounting, thermal control)

Page 31: HARPS ... North

Subsystem break-down

Isolation box

Services

Fiber run

Detector

Spectrograph room

Adapter

LCUs

WS

CfAOGESO/OG

Spectrograph

Vacuum system

Page 32: HARPS ... North

Subsystem: Opto-mechanics

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Subsystem: Detector

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Subsystem: Exposure meter

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Exposure meter

Page 36: HARPS ... North

Subsystem: Vacuum System

Page 37: HARPS ... North

Subsystem: Fiber run

Page 38: HARPS ... North

Subsystems: Front end, HW, SW

Calibration fibers (0.3mm dia.)CfA

Page 39: HARPS ... North

Interfaces CfA - OG

I. Detector - Spectrograph

II.Fiber run - Front endIII. Vacuum System - HARPS Room/Enclosure

IV.Electronic components

Page 40: HARPS ... North

Detector - Spectrograph

✓ Chip position and tilt✓ Field-lens tilt✓ Electrical connectors and cables✓ Front-amplifier size and location

-> ICD between SP and DU

Page 41: HARPS ... North

Fiber run - Front end

✓ Fiber-hole position(s)✓ Mirror position and tilt✓ Mirror shape (possibly flat !)

-> ICD between FR and FE

Page 42: HARPS ... North

Vacuum system - Spectrograph Room

✓ Heat load on spectrgraph room✓ Rail-fixation plate✓ Location of services✓ Feed-through window through SR wall✓ Hoist > 2500 kg

-> ICD between VS and SR

Page 43: HARPS ... North

Spectrograph electronicsElements to be integrated in

SW: ✓ F-200 Temperature controller (conf.,

read)✓ Agilent pulse counter (conf., read)✓ Pfeiffer Digiline P-sensors (read)✓ Uniblitz shutter controller

(read/write)✓ Lakeshore T-controller for CCD

(conf., read)✓ Lakeshore T-controller for Isolation

Box (conf., read)✓ I-Omega T-controllers for CFC ->

temperatures and alarms (read)✓ LN2-level gauge (read)

Page 44: HARPS ... North

Best wishes to HARPS-N

Page 45: HARPS ... North

3-level conceptSpectrograph room: +- 0.2

K

Isolation Box: +- 0.01 K

Spectrograph: +- 0.001 K

15°C

17°C

Page 46: HARPS ... North

Spectrograph room

Model : YORK YEB 3S

Serial Nr. : 135.157.DN003

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Room thermal control

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Temperature control

✓Lakeshore 331S T-controller + diode sensors + heaters✓80 mm polysterene panels✓Thermal load on Room: 10 W/K

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Performances, but ...

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Leassons learned

Concept works well and is simpleChanging thermal load through feet produces gradient and seasonal effects➡ Thermal isolation of feet

➡ Heater below feet, Tref = vacuum vessel

Page 51: HARPS ... North

Project schedule OG

2008: Procurement of components 04/2008 - 04/2009: Manufacturing of mechanical parts for vacuum and optics01/2009: Start assembly03/2009: Delivery of FA, DU and Control HW and SW by CfA to OG04/2009 - 07/2009: Integration and tests OG