Crossover Phase Tracking Calculator

Crossover Phase Tracking Calculator

Estimate how two speaker ways track through a crossover by combining measured acoustic phase, filter target, driver offset, polarity, high-driver delay, level balance, and listening geometry.

🔊 Real Crossover Presets

Load a common loudspeaker alignment, then adjust the measured phase values from your measurement software. The math treats the low driver as the timing reference and calculates the high driver's effective phase at Fc and across the selected tracking band.

Phase, Filter, And Geometry Inputs
Distance fields convert when changed.
Use the acoustic crossover point, not just the electrical value.
Wider bands reveal slope mismatch faster.
Used to estimate tracking above and below Fc.
Choose the measured acoustic target after driver rolloff.
Positive means the high way is louder at Fc.
Unwrapped or wrapped phase is accepted.
Measure with the same time reference as the low way.
Adds 180 degrees to the high-way phase if inverted.
Positive means the high acoustic center is behind the low way.
DSP delay on the high way; negative means advance in the model.
Fahrenheit in imperial mode, Celsius in metric mode.
Vertical distance between acoustic centers on the baffle.
Used to translate lobe angle into listening height shift.
Changes the scoring thresholds and recommendation.

The calculator uses complex summing at Fc, speed-of-sound delay conversion, and minimum-phase filter-shape estimates anchored to your measured phase. A real verification still requires polarity inversion and measurement sweeps around the final listening axis.

Phase Match At Fc
2 deg
excellent acoustic tracking
Summed Response At Fc
+6.0 dB
0.0 dB below coherent sum
Delay Correction
0.003 ms
add to high way for best phase
Main Lobe Aim
0.0 deg
near the measured axis

Full Phase Tracking Breakdown

📊 Current Alignment Snapshot
98

Phase tracking score

12 deg

Band phase spread

0.65 in

Offset distance

0.01 cyc

Error as cycle fraction

🎚 Audio And Instrument Spec Comparison Grid
LR4

In-phase target at Fc for many 2-way monitors

LR2

Often needs high-way polarity inverted

80 Hz

Subwoofer delay moves phase rapidly

2 kHz

One inch offset is about 15 degrees

Horn

Deep acoustic centers may need DSP delay

Coax

Short spacing helps lobing but phase still matters

Woofer

Breakup and rolloff alter acoustic phase

Tweeter

Padding changes level, not acoustic timing

📐 Acoustic Crossover Target Reference
TargetNominal SlopePolarity At FcPhase Tracking Note
Linkwitz-Riley 4th24 dB/oct each waySame polarityLow and high outputs are nominally in phase through Fc when acoustic centers are time aligned.
Linkwitz-Riley 2nd12 dB/oct each wayUsually invert one wayElectrical targets are 180 degrees apart at Fc, so polarity inversion restores summing.
Butterworth 3rd18 dB/oct each waySame polarityCan sum flat on-axis but often shows asymmetric vertical lobing.
Butterworth 2nd12 dB/oct each wayDepends on acoustic phaseProduces peaking or dipping unless driver phase and polarity are checked carefully.
First order6 dB/oct each wayOften same polarityNeeds broad driver overlap and low acoustic offset because both ways radiate far from Fc.
🔢 Phase Error And Summing Loss
Phase ErrorEqual-Level SumLoss Vs CoherentLikely Listening Result
0 degrees+6.02 dB0.00 dBMaximum acoustic addition at the crossover point.
30 degrees+5.72 dB-0.30 dBUsually excellent if the off-axis response is also smooth.
60 degrees+4.77 dB-1.25 dBAudible contour shift can appear through the crossover band.
90 degrees+3.01 dB-3.01 dBPartial cancellation; polarity and delay deserve a close look.
120 degrees0.00 dB-6.02 dBStrong dip for equal levels; off-axis lobing usually becomes obvious.
180 degreesDeep nullVery largeClassic reverse-polarity null; useful for checking acoustic symmetry.
Delay, Offset, And Phase Reference
FrequencyOne Cycle Time30 Degree OffsetOne Inch Phase
80 Hz12.50 ms1.04 ms / 14.1 in2.1 degrees
500 Hz2.00 ms0.17 ms / 2.3 in13.2 degrees
1,200 Hz0.83 ms0.07 ms / 0.9 in31.7 degrees
2,000 Hz0.50 ms0.04 ms / 0.6 in52.9 degrees
3,500 Hz0.29 ms0.02 ms / 0.3 in92.6 degrees
📋 Common Speaker Project Starting Points
Project TypeTypical FcCritical Phase CheckPractical Target
Measurement tip: Keep the same timing reference for both ways before entering phase. If the low way is measured with a different impulse reference than the high way, the calculated delay will point in the wrong direction.
Null-test tip: After a good same-polarity sum, invert the high way and look for a deep, centered null at Fc. A shallow or shifted null usually means acoustic centers, levels, or slopes are not tracking.
Lobing tip: Driver spacing and phase both steer the vertical lobe. A small tweeter delay can be correct on-axis while still moving the best listening height above or below the design axis.
Subwoofer tip: At low crossover frequencies, room reflections can dominate the trace. Average several seats, then use delay for the broadest combined response rather than chasing one perfect point.

You select your drivers after poring over datasheets. You run calculations for crossover frequency. You purchase inductor and capacitors. You build a cabinet with rigid bracing.

Now you’re ready to sit back and listen: the midrange is thin; the bass doesn’t feel connected. And it’s almost never the fault of components. It’s nearly always phase. More specificly, it’s what occurs during the transition. The acoustic seam, when one driver hands off energy to the next. Unless their waves matches up, you aren’t listening to music. You’re listening to cancellation.

Why Phase Matters More Than Parts

That’s why the calculator up top include the physical offset of each driver along with the measured acoustical phase and combines them with target filters to estimate how those waves will interact. It assumes the low driver is your time reference and determines actual phase of the high driver at the crossover point. Because when it comes to electricity, it lies to you. That Linkwitz-Riley fourth-order filter appears all nice and neat on paper (a.k.a. Circuit simulator), but when signal exits the coil and travels through space, things change with distance.

Set your tweeter back just an inch from woofer plane and it’ll arrive late at your ears. And at high frequencies, that small amount of distance amounts to a huge chunk of a wavelength. Until then, most builders don’t think about it; they just figure if they match the electrical filters, everything will sound okay. Not always.

To do so, the tool allow you to enter the depth offset of the high-frequency dome or horn. You can also enter its vertical distance from center of the other drivers. You also indicate whether you inverted polarity wiring. A simple switch can alters the phase angle by one hundred eighty degrees, changing a peak into a null.

With all this information, the calculator runs the math on interaction and displays whether your summed response is coherent or whether you’re wasting a considerable amount of acoustic energy due to destructive interference.

To understand what’s going on, remember: Decibels aren’t the only thing to consider. There are also waveforms. In a perfect world, with no phase error at all, you have maximum addition (the desired result for most music playback). Already at sixty-degrees difference, you begin to see a dip in combined response. At one hundred twenty degrees of error, drivers is working against each other and the output drops substantially.

The chart on the page makes this clear. It shows how rapidly combined power can collapse when alignment begins to drift. You may think a couple of degrees of mismatch doesn’t matter. However, the way we hear audio makes it sound like distant or hollow sound image.

Where it gets interesting is what do you do if it’s out of time? Adding a delay to high driver shifts the vertical lobe pattern, which might not help depending on where you are sitting. That delay could of actually make it worse instead of better, unless you are sitting right on axis. That’s where the calculator shines as it provides an estimated view of how the main lobe aims for the given distance from your listening position. It will force you to see the compromise between directivity off axis versus on-axis phase coherence. You can’t have them both perfect all at once. Where is the sweet spot? You’ll need to decide.

Even fewer designers account for temperature. In warmer air, sound travels quicker, altering the physical delay each inch represents. This isn’t significant at room temperature, unless you’re outdoors or doing very precise work. Because acoustic alignment isn’t opinion, it’s physics, and there’s a field for air temperature on the tool.

Fundamental timing errors can’t be EQ’d away. Sure, equalization alters amplitude but it doesn’t advance or delay the waveform in time. Align phase first, tune levels second (that keeps entire system together). First measure your phase of each driver independently at crossover frequency. Input those numbers plus your physical dimensions. Examine predicted response of the sum. Do you see a large null? Reverse the polarity and recheck. Now tweak the delay until they’re locked in-phase.

It’s subtle, but more important than all the cool parts in the link. Making them come in sync makes two different sources become one single instrument. The smooth transition lets the speaker vanish, leaving only the sound.

Crossover Phase Tracking Calculator

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