= Current Issues of the IFO design = This page summarizes the current issues of the LCGT IFO design and provides links to pages discussing the details of each problem. <> == Error assessments == To realize the design sensitivity, all of IFO parameters should be close to the designed nominal values. Error assessments aim to evaluate that how large tolerances of the IFO parameters are acceptable. * ROC * Mirror spec. (Reflectivity) * Cavity length == Arm Cavity Parameters == [[LCGT/subgroup/ifo/ISC/ArmCavityDesign|Arm Cavity Design]] === Finesse === 1550 is the default value decided by the IFOBW working group. ''Issues'' * 1550 could be too high. Need more investigations on what could go wrong. * Mirror optical loss = 45ppm per reflection. [[Hiro_100811|Is it possible?]] (by Hiro Yamamoto) * With the current PRM (R=80%), the acceptable loss to achieve PRG=8.25 (100 W input power is assumed) is 58ppm. === g-factor (mirror ROC) === g,,1,, = g,,2,, = sqrt(1/3) = 0.57735 is the conventional number to avoid HOM resonances. For L = 3000.0 m, it gives ROC = 7098.08 m. There are several factors to determine the g-factor. * g-factor determines the beam spot size on the test masses. Some kind of thermal noise is smaller when the spot size is larger. * So called Sidles-Sigg instability of the arm cavities by the radiation pressure is affected by the choice of g-factor. * The parametric instability is also dependent upon g-factor. ==== Thermal noise and beam radius ==== Coating Brownian and thermoelastic noise are the largest noise sources; coating is the biggest at f<500 Hz and TE is the biggest at 500 Hz