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given, usually wavelength/2 |
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given, printed on transducer one of the 2 variables you can control |
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given, printed on transducer one of the 2 variables you can control |
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F*wavelength
or distance/time |
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Sin^-1((1.22*λ)/(D))
answer in degrees |
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2(X)+D
2*(X-value)+diamater |
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basic calculations for drawing beam |
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Definition
T D F V wavelength theta N R X B.S.S. |
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sin^-1((V2/V1)Sin(θI))=R Sin^-1((V1/V2)Sin(θR))=I |
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when Frequency (F) goes up
from relational chart |
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Definition
Wavelength- goes down theta- down Resolution (R)- up Sensitivity (S)- up Nearfield (N)- up Penetration (P)- down |
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when Diameter (D) goes up
from relational chart |
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Definition
Wavelength- = stays the same theta- down Resolution (R)- down Sensitivity (S)- down Nearfield (N)- up Penetration (P)- up |
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when Velocity (V) goes up
from relational chart |
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Definition
Wavelength- up theta- down Resolution (R)- down Sensitivity (S)- down Nearfield (N)- down Penetration (P)- up |
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Definition
(2*T)/cos(θ)=VeePath(middle#)
VeePath/2=1stLeg(1st#)
1stLeg*3=3rdLeg(3rd#) |
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skip distance (SD) formual |
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Definition
(2*T)TAN(θ)=VeePath(middle#)
VeePath/2=1stLeg(1st#)
1stLeg*3=3rdLeg(3rd#) |
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AATT absolute arrival time technique |
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Definition
T-(SP of tip peaked)*Cos(θR))= |
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RATT relative arrival time technique |
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T-((MP of base-MP of tip)/(cos(θR))= |
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calculates either the incident angle (sine of angle 1)
or the refracted angle (sine of angle 2)
for given velocities V1 and V2 |
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angle of incidence (Sin θ1) formula |
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angle of refraction (Sinθ) formula |
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what acoustic impedance formula does |
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Definition
calculates the acoustic impedance (Z) of a given material's Density (P) and velocity(V) |
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acoustic impedance formula and variations |
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Definition
Z=P*V
P=Z/V
V=Z/P
R=((Z2-Z1)/(Z2+Z1))^2
*P=density* |
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x-value of the probe, this is the distance of the sound exit point to the front edge of the probe |
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