Name: CALSOD 3.10 Computer: MS-DOS Distributor: Audiosoft Price: US$320 Agent: Harmonic Design GmbH, Sonic Design AB, Munro Associates, ME Technologies, Marton Music, Euterpe Audio Demo disk: http://www.ljusdal.se/sd/caldem31.zip Description: CALSOD 3.10 can model complete multiway (two-way, three- way, four-way, etc) loudspeaker systems. Features include: minimum-phase curve-fitting techniques enabling accurate simulations of driver sound pressure and impedance responses to be created, including phase response that is important in crossover network design; simulation of sound pressure and impedance response for vented, sealed, passive-radiator, filter-assisted and bandpass low-frequency alignments; the designer can specify the positions of drivers on the baffle for accurate simulation of effects on summed response caused by inter-driver time delays to the listening position; optimization of completely general user-defined passive and active crossover networks with up to 60 components; standard filter target functions for Linkwitz-Riley, Butterworth, Bessel, constant voltage and user-defined designs; curve-fitting optimizer for quickly creating sound pressure models of driver response; curve-fitting optimizer for creating impedance response models; curve-fit optimizer for estimating driver Thiele-Small parameters (Qes, Qms, Qts, Fs, Vas, Bl, Mms, Cms, etc) from experimental data using added-mass or box loading techniques; driver Thiele-Small parameters can also be estimated using a single measurement of the driver impedance when mounted in a vented-box of known volume and arbitrary tuning; driver impedance models use frequency dependent voice-coil inductance and resistance, parameters which can be automatically determined by the impedance curve-fit optimizer and Thiele-Small parameter estimator; automatic dcr calculation for air-cored inductors; piston approximation for driver models to simulate off-axis radiation characteristics; specify orientation of the principal radiation axis of each individual driver model used in the loudspeaker system; import measurement files from MLSSA, IMP, Audiosuite, CLIO, SYSid, System One, AIRR, PC Audio Lab, AMS-PC, and LMS analyzers, with support for SPL optimization using up to 5 observation points to account for off-axis radiation characteristics; simulation of the step in the sound pressure response caused by diffraction of sound around the baffle; simulation of the effects of floor reflections on the sound pressure response by setting up a system of loudspeaker sources and images; simulation of room gain effects on low-frequency response; modelling of linear arrays. Plots include: impedance of each individual loudspeaker driver; input impedance of the crossover network and loudspeaker combination; voltage transfer function of each filter when it is loaded by its driver; filtered and unfiltered sound pressure response of each loudspeaker driver included in the system; desired target acoustic response function and target impedance function; summed sound pressure response of a multiway loudspeaker system, including the response at up to five different observation points; magnitude and phase response plots can be presented on a linear frequency scale to allow the linear-phase behaviour of the loudspeaker system to be easily assessed. The program comes with an extensive printed user's manual with detailed tutorial examples. Formulas are provided for determining initial crossover component values for Butterworth, Linkwitz-Riley, and Bessel filters.
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