SYSTEM
CHECK
ALIGNMENT
GUIDELINES
Page 67/90
7.3 Driving the MSUB18s from the AUX send
It is quite common to use the AUX send of a mixing desk to drive the Sub section of a PA system. This
gives the mixing engineer more flexibility to set the level of the subbass relative to the main PA, apply
special effects, or to use a different EQ on the Sub. However, it also raises some serious issues for the
performance & safety of the system (mostly time alignment).
At NEXO, great care is taken to design optimum phase alignment from one octave above to one octave
below the crossover frequency point. By doing so, drivers are working perfectly together and providing
the best efficiency possible. It is then up to the user to adjust the delay on the NEXO TD Controllers to
match the physical path difference of the different systems. It is thus possible to get a well-adjusted
system, even without measuring instruments.
If MSUB18s are driven form an AUX output, NXAMPs are fed with two signals coming from different
sources. If those two sources (MAIN output & AUX send) are not exactly in phase, delay is introduced
into the crossover between the GEO M12 array and the MSUB18s. It is then mandatory to use proper
measurement tool to optimize phase response.
Why is it unlikely that AUX and MAIN outputs have the same phase?
•
Signal paths are likely to be different; any filter modifying the bandwidth and EQ of the signal
is also affecting the phase.
Example: a 24dB/oct high pass filter set at 15Hz is affecting amplitude of the signal by only
0.6dB at 30Hz, but the phase shift is 90°!! At 100Hz we can still measure 25° of phase shift.
•
Limiting bandwidth with a low pass filter can introduce a phase difference of up to 180°
(completely out of phase) at the cross over point.
•
If the signal is passing through any digital equipment, between 1.4ms and 2.2ms is being
added (around 70° phase shift at 100Hz) due solely to the converter delay! The additional
delay due to the processing itself (look ahead compressor, delay…) can be quite important
as well.
If both outputs are not measured in the actual configuration, it is very likely that phase alignment will not
be correct.
Consequences of badly aligned systems
Mis-aligned systems have lower efficiency: i. e. for the same SPL the system will have to be driven harder,
activating the displacement & temperature protection at lower output levels. Both sound quality and
reliability will decrease as the system is stressed.
Precautions & Checks
Before using the AUX of a mixing desk, ensure that MAIN and AUX outputs are in phase;
Always apply identical EQ or processing on both channels, so that the phase relationship will not be
altered;
Never add additional low pass filtering on the SUB or high pass filtering on the main system;
Inverting polarity on one channel should always result in a massive difference near the crossover point.
If that is not the case, the system is no longer aligned.
7.4 Recommended installation tools and equipment
Tape measure – should be 30m/100ft in length and be of durable fibre material. Have one per array
available to speed up the installation process.
Spirit level – used to ascertain the trueness of the surface from which the angle measurements originate.
Rangefinder measuring device – either a Disto type laser measure or an optical laser rangefinder can be
used. Devices such as the Bushnell ‘Yardage Pro’ sports rangefinders provide sufficiently accuracy and
are easy to use. They have the additional advantage of working very well in bright sunlight.
Содержание GEO M12 Series
Страница 13: ...CONNECTION DIAGRAMS Page 13 90 3 3 GEO M12 passive mode and MSUB18 NXAMP4x1mk2 Bridge Stereo ...
Страница 14: ...Page 14 90 CONNECTION DIAGRAMS 3 4 GEO M12 passive mode NXAMP4x2mk2 3 5 MSUB18 NXAMP4x2mk2 ...
Страница 15: ...CONNECTION DIAGRAMS Page 15 90 3 6 GEO M12 passive mode and MSUB18 NXAMP4x2mk2 ...
Страница 16: ...Page 16 90 CONNECTION DIAGRAMS 3 7 GEO M12 passive mode NXAMP4x4 ...
Страница 17: ...CONNECTION DIAGRAMS Page 17 90 3 8 GEO M12 active mode NXAMP4x4 ...
Страница 18: ...Page 18 90 CONNECTION DIAGRAMS 3 9 MSUB18 Omni Mode NXAMP4x4 ...
Страница 19: ...CONNECTION DIAGRAMS Page 19 90 3 10 MSUB18 Cardio Mode NXAMP4x4 ...
Страница 20: ...Page 20 90 CONNECTION DIAGRAMS 3 11 GEO M12 passive mode and MSUB18 NXAMP4x4 ...
Страница 57: ...GEO M12 HARDWARE SETUP PROCEDURE Page 57 90 6 4 5 MSUB18 and GEO M12 flown with Touring Bumper ...
Страница 73: ...TECHNICAL SPECIFICATIONS Page 73 90 8 3 3 VNT EXBARM12 Parts X1 X 2 Dimensions Weight 11 kg 25 4 lb ...
Страница 74: ...Page 74 90 TECHNICAL SPECIFICATIONS 8 3 5 VNT GSTKM10M12L Parts X1 Dimensions Weight 9 7 kg 19 8 lb ...
Страница 75: ...TECHNICAL SPECIFICATIONS Page 75 90 8 3 6 VNT GSTKM10M12S Parts X1 Dimensions Weight 7 kg 15 4 lb ...
Страница 76: ...Page 76 90 TECHNICAL SPECIFICATIONS 8 3 7 VNT MNSTKM12 Parts X1 Dimensions Weight 3 kg 6 6 lb ...
Страница 77: ...TECHNICAL SPECIFICATIONS Page 77 90 8 3 8 GMT LBUMPM12 Parts X1 X1 Dimensions Weight 10 5 kg 23 1 lb ...
Страница 78: ...Page 78 90 TECHNICAL SPECIFICATIONS 8 3 9 GMT EXBARM12L Parts X1 X2 X2 X1 Dimensions Weight 9 7 kg 21 4 lb ...
Страница 79: ...TECHNICAL SPECIFICATIONS Page 79 90 8 3 10 GMT FLGM12 Parts X1 Dimensions Weight 1 kg 2 2 lb ...
Страница 80: ...Page 80 90 TECHNICAL SPECIFICATIONS 8 3 11 MST WBMSUB18 Parts X1 Dimensions Weight 7 2 kg 15 9 lb ...
Страница 81: ...TECHNICAL SPECIFICATIONS Page 81 90 8 3 12 MST DOLLYMSUB18 Parts X1 Dimensions Weight 10 kg 22 lb ...
Страница 82: ...Page 82 90 TECHNICAL SPECIFICATIONS 8 3 13 MST COVMSUB18 Parts X1 Weight 2 2 kg 5 lb ...
Страница 83: ...TECHNICAL SPECIFICATIONS Page 83 90 8 3 14 MST COV2MSUB18 Parts X1 Weight 3 5 kg 7 7 lb ...
Страница 84: ...Page 84 90 TECHNICAL SPECIFICATIONS 8 3 15 GMT 2CASEM12 Parts X1 Dimensions Weight 35 kg 77 lb ...
Страница 85: ...TECHNICAL SPECIFICATIONS Page 85 90 8 3 16 GMT 3CASEM12 Parts X1 Dimensions Weight 56 kg 123 lb ...