Resonant Dampers for Parametric Instabilities in Gravitational Wave Detectors
arXiv:1502.06056 · doi:10.1103/PhysRevD.92.082001
Abstract
Advanced gravitational wave interferometric detectors will operate at their design sensitivity with nearly 1MW of laser power stored in the arm cavities. Such large power may lead to the uncontrolled growth of acoustic modes in the test masses due to the transfer of optical energy to the mechanical modes of the arm cavity mirrors. These parametric instabilities have the potential of significantly compromising the detector performance and control. Here we present the design of "acoustic mode dampers" that use the piezoelectric effect to reduce the coupling of optical to mechanical energy. Experimental measurements carried on an Advanced LIGO-like test mass shown a 10-fold reduction in the amplitude of several mechanical modes, thus suggesting that this technique can greatly mitigate the impact of parametric instabilities in advanced detectors.
References in corpus (7)
- Advanced LIGO
- Titania-doped tantala/silica coatings for gravitational-wave detection
- Thermo-optic noise in coated mirrors for high-precision optical measurements
- Sensors and Actuators for the Advanced LIGO Mirror Suspensions
- Damping parametric instabilities in future gravitational wave detectors by means of electrostatic actuators
- Observation of Three Mode Parametric Interactions in Long Optical Cavities
- Observation of the Three-Mode Parametric Instability
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- The next detectors for gravitational wave astronomy
- Optical Gravitational Wave Antenna with Increased Power Handling Capability
- Study of Parametric Instability of gravitational wave detectors using silicon test masses
- Thermal modulation for suppression of parametric instability in advanced gravitational wave detectors
- High speed, high power 2D beam steering for mitigation of optomechanical parametric instability in gravitational wave detectors