A fan source can be represented by prescribed amplitudes of acoustic modes generated within the nacelle duct.
Incorrect! Try again.
21For a duct mode with acoustic wavenumber and cutoff wavenumber , what is its axial wavenumber in a stationary medium?
Basic theory of sound propagation in ducts
Medium
A.
B.
C.
D.
Correct Answer:
Explanation:
The axial wavenumber is .
Incorrect! Try again.
22A duct mode is excited at a frequency below its cutoff frequency. How does its amplitude vary sufficiently far from the source?
Basic theory of sound propagation in ducts
Medium
A.It grows linearly with axial distance
B.It oscillates with constant axial amplitude
C.It propagates without axial attenuation
D.It decays exponentially with axial distance
Correct Answer: It decays exponentially with axial distance
Explanation:
Below cutoff, the axial wavenumber is imaginary, so the mode is evanescent and decays exponentially away from the source.
Incorrect! Try again.
23For plane-wave propagation in a rigid duct of area , which expression gives the characteristic impedance defined as pressure divided by volume velocity?
Basic theory of sound propagation in ducts
Medium
A.
B.
C.
D.
Correct Answer:
Explanation:
Particle velocity satisfies , while volume velocity is . Therefore, .
Incorrect! Try again.
24A rigid, uniform duct carries sound of wavelength . If a perfect reflection creates a standing wave, what is the distance between adjacent pressure nodes?
Basic theory of sound propagation in ducts
Medium
A.
B.
C.
D.
Correct Answer:
Explanation:
Adjacent pressure nodes in a standing wave are separated by half a wavelength, so the spacing is .
Incorrect! Try again.
25A plane acoustic wave travels downstream through a nacelle with uniform mean-flow speed . Neglecting losses, which axial wavenumber corresponds to angular frequency ?
Sound propagation in an aeroengine nacelle
Medium
A.
B.
C.
D.
Correct Answer:
Explanation:
The downstream wave has laboratory-frame phase speed , giving .
Incorrect! Try again.
26A nacelle liner changes a mode's axial wavenumber from a real value to under the convention , where . What is the axial amplitude factor?
Sound propagation in an aeroengine nacelle
Medium
A.
B.
C.
D.
Correct Answer:
Explanation:
Substitution gives , so the positive attenuation constant produces exponential decay.
Incorrect! Try again.
27Which modification most directly increases the range of frequencies over which a passive nacelle liner can attenuate duct noise?
Sound propagation in an aeroengine nacelle
Medium
A.Removing resistance from the liner face
B.Replacing the perforate with a rigid wall
C.Making every cavity equally shallow
D.Using cavities with multiple tuned depths
Correct Answer: Using cavities with multiple tuned depths
Explanation:
Different cavity depths provide different resonant frequencies, broadening the effective attenuation band compared with a single-depth liner.
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28Two nacelle modes have the same frequency, but only one has a real axial wavenumber at the inlet plane. Which mode can efficiently carry acoustic energy toward the far field?
Sound propagation in an aeroengine nacelle
Medium
A.Both modes with identical efficiency
B.The mode with real axial wavenumber
C.Neither mode at that frequency
D.The mode with imaginary axial wavenumber
Correct Answer: The mode with real axial wavenumber
Explanation:
A real axial wavenumber identifies a cut-on mode that propagates. An imaginary axial wavenumber identifies an evanescent mode that decays axially.
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29In a transfer element model, the acoustic state is . If element 1 is followed by element 2 and , , what is the total transfer matrix?
Fundamental idea of the transfer element method
Medium
A.
B.
C.
D.
Correct Answer:
Explanation:
Substitution gives . Matrix order follows the physical order under the stated convention.
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30Why are pressure and volume velocity commonly selected as transfer-matrix state variables for one-dimensional duct systems?
Fundamental idea of the transfer element method
Medium
A.They remain constant through every duct element
B.They remove all frequency dependence from the model
C.They guarantee that higher modes are fully represented
D.They support junction continuity and impedance conditions
Correct Answer: They support junction continuity and impedance conditions
Explanation:
Pressure and volume velocity connect naturally through continuity, source, load, and impedance boundary conditions at element interfaces.
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31For a lossless, uniform duct element represented using pressure and volume velocity, which property is expected for its transfer matrix?
Fundamental idea of the transfer element method
Medium
A.Its determinant equals zero
B.Its determinant equals one
C.Every entry is purely real
D.Every diagonal entry vanishes
Correct Answer: Its determinant equals one
Explanation:
The standard reciprocal, lossless uniform-duct transfer matrix has unit determinant, consistent with conservation and reciprocity.
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32A duct transfer matrix is known, and a load impedance is specified at the outlet. What additional result can be calculated at the inlet?
Fundamental idea of the transfer element method
Medium
A.The blade passing frequency
B.The fluid stagnation temperature
C.The inlet acoustic impedance
D.The fan rotational speed
Correct Answer: The inlet acoustic impedance
Explanation:
The matrix relates inlet pressure and volume velocity to their outlet values. Applying therefore determines .
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33A smoothly varying duct is approximated by short uniform sections. How is the overall transfer matrix constructed?
Construction of transfer element for a varying cross-section duct
Medium
A.By differentiating each section matrix once
B.By multiplying the section matrices in sequence
C.By averaging all section matrices directly
D.By adding the section matrices in sequence
Correct Answer: By multiplying the section matrices in sequence
Explanation:
Each section maps one interface state to the next, so sequential substitution produces an ordered product of the individual transfer matrices.
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34At an ideal abrupt area change with no mean flow or local loss, which pair of quantities should be continuous when joining two transfer elements?
Construction of transfer element for a varying cross-section duct
Medium
A.Density and particle displacement
B.Pressure and volume velocity
C.Intensity and acoustic impedance
D.Pressure and particle velocity
Correct Answer: Pressure and volume velocity
Explanation:
Pressure continuity follows from force balance, while conservation of oscillatory mass flow gives continuity of volume velocity for the same ambient density.
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35Two short uniform sections contain the same fluid, but section 2 has twice the area of section 1. How do their plane-wave characteristic impedances compare?
Construction of transfer element for a varying cross-section duct
Medium
A.
B.
C.
D.
Correct Answer:
Explanation:
Since , doubling the cross-sectional area halves the pressure-to-volume-velocity characteristic impedance.
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36A numerical transfer-element model of a rapidly varying duct gives results that change significantly when the number of sections is doubled. What is the best interpretation?
Construction of transfer element for a varying cross-section duct
Medium
A.The original spatial discretization was too coarse
B.The acoustic frequency must be exactly zero
C.The duct must support only evanescent modes
D.The transfer-matrix order must be reversed
Correct Answer: The original spatial discretization was too coarse
Explanation:
Strong sensitivity to further subdivision indicates that the short-section approximation has not yet converged and requires finer spatial resolution.
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37A fan has 18 blades and rotates at . What is its blade-passing frequency?
Fan noise source modelling
Medium
A.
B.
C.
D.
Correct Answer:
Explanation:
The rotational frequency is . Thus, .
Incorrect! Try again.
38For a rotor-stator interaction, the circumferential mode order is modelled by . If , , and , what is ?
Fan noise source modelling
Medium
A.
B.
C.
D.
Correct Answer:
Explanation:
Substitution gives . The sign identifies the circumferential spinning direction under the chosen convention.
Incorrect! Try again.
39Which source representation is most directly associated with unsteady aerodynamic loading on fan blades?
Fan noise source modelling
Medium
A.A rotating dipole distribution
B.A rigid pressure-release boundary
C.A stationary monopole distribution
D.A uniform entropy distribution
Correct Answer: A rotating dipole distribution
Explanation:
Fluctuating blade forces produce loading noise, which is commonly represented by rotating dipole sources distributed over the blade surfaces.
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40A measured fan spectrum contains narrow peaks at the blade-passing frequency and its harmonics, superimposed on a continuous spectrum. Which modelling approach is most appropriate?
Fan noise source modelling
Medium
A.Represent all components as one pure monopole tone
B.Combine tonal modal sources with a broadband source model
C.Model only the time-averaged fan pressure rise
D.Treat the complete spectrum as propagation loss
Correct Answer: Combine tonal modal sources with a broadband source model
Explanation:
Blade-passing peaks require coherent tonal sources, while the continuous component requires a broadband model for turbulence-related noise.
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41A rigid circular duct of radius contains a quiescent fluid with sound speed . The transverse eigenvalues satisfy . Which condition guarantees that only the plane mode can propagate?
Basic theory of sound propagation in ducts
Hard
A., where
B., where
C., where
D., where
Correct Answer: , where
Explanation:
The first non-plane rigid-wall mode has transverse eigenvalue . Thus all higher modes are cut off when .
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42For a duct mode with transverse wavenumber in a lossless uniform duct, the acoustic pressure varies as . If , what is the pressure-amplitude ratio between planes separated by distance in the decaying direction?
Basic theory of sound propagation in ducts
Hard
A.
B.
C.
D.
Correct Answer:
Explanation:
Below cutoff, in the decaying direction, where . Pressure amplitude therefore decays as .
Incorrect! Try again.
43A uniform subsonic mean flow of Mach number passes through a constant-area duct. A mode has transverse wavenumber , and its dispersion relation is . What is its laboratory-frame cutoff angular frequency?
Basic theory of sound propagation in ducts
Hard
A.
B.
C.
D.
Correct Answer:
Explanation:
Real axial wavenumbers exist when the quadratic dispersion relation has a nonnegative discriminant, giving .
Incorrect! Try again.
44A plane wave in a uniform duct has characteristic impedance when volume velocity is used. If the duct terminates in impedance , what is the pressure reflection coefficient at the termination?
Basic theory of sound propagation in ducts
Hard
A.
B.
C.
D.
Correct Answer:
Explanation:
Applying to the sum of incident and reflected waves gives . It vanishes for an impedance-matched termination.
Incorrect! Try again.
45An axisymmetric nacelle duct contains a finite, axisymmetric lined section between rigid sections. At each liner discontinuity, which modal-coupling statement is correct?
Sound propagation in an aeroengine nacelle
Hard
A.Radial order is conserved, but circumferential orders can couple
B.Circumferential order is conserved, but radial orders can couple
C.Both circumferential and radial mode orders must remain unchanged
D.All circumferential and radial orders generally couple equally
Correct Answer: Circumferential order is conserved, but radial orders can couple
Explanation:
Axisymmetry preserves the azimuthal Fourier order . The changed wall condition alters radial eigenfunctions, so matching at the discontinuity can couple radial modes sharing that .
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46Neglecting mean flow, a cut-on nacelle mode has axial and transverse wavenumbers and . At what approximate polar angle from the duct axis does its principal radiation occur after an ideal unflanged opening?
Sound propagation in an aeroengine nacelle
Hard
A.
B.
C.
D.
Correct Answer:
Explanation:
Matching the transverse phase variation to a free-field wave gives . Modes near cutoff therefore radiate at angles approaching .
Incorrect! Try again.
47Why can choosing a liner impedance equal to fail to maximize attenuation of a nacelle mode under grazing mean flow?
Sound propagation in an aeroengine nacelle
Hard
A.The characteristic impedance is independent of duct geometry and mode
B.A locally reacting liner cannot absorb energy from cut-on modes
C.The acoustic impedance becomes identically zero in any mean flow
D.The modal wall impedance and optimum resistance depend on mode and flow
Correct Answer: The modal wall impedance and optimum resistance depend on mode and flow
Explanation:
Maximum attenuation is governed by the complex modal eigenvalue, which depends on wall impedance, mode shape, frequency, geometry, and grazing flow—not solely on the free-field value .
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48For an upstream-travelling plane acoustic wave in a uniform subsonic inlet flow of speed , what is its wavelength at fixed laboratory angular frequency ?
Sound propagation in an aeroengine nacelle
Hard
A.
B.
C.
D.
Correct Answer:
Explanation:
The upstream wave has laboratory-frame phase speed magnitude . Hence and .
Incorrect! Try again.
49Using the state vector and time convention , which matrix maps the state at to the state at for a lossless uniform duct?
Fundamental idea of the transfer element method
Hard
A.
B.
C.
D.
Correct Answer:
Explanation:
For , the uniform-duct solution gives diagonal terms and off-diagonal terms scaled by and .
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50Three consecutive elements satisfy , , and . What is the assembled transfer matrix from plane 3 to plane 0?
Fundamental idea of the transfer element method
Hard
A.
B.
C.
D.
Correct Answer:
Explanation:
Successive substitution gives . Matrix order cannot generally be reversed.
Incorrect! Try again.
51For a reciprocal, lossless two-port duct element described using consistently directed pressure and volume velocity, which property is expected of its transfer matrix ?
Fundamental idea of the transfer element method
Hard
A.
B.
C.
D.
Correct Answer:
Explanation:
Reciprocity and conservation for a consistently defined two-port lead to a unimodular transfer matrix. The matrix need not be self-inverse or have unit trace.
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52A long nacelle model contains strongly evanescent modes. Direct multiplication of transfer matrices becomes ill-conditioned because exponentially growing and decaying terms coexist. Which reformulation is generally most stable?
Fundamental idea of the transfer element method
Hard
A.Retain only the exponentially growing modal solutions
B.Normalize the final transfer matrix by its determinant
C.Replace all evanescent axial wavenumbers by zero
D.Use scattering matrices and stable cascading operations
Correct Answer: Use scattering matrices and stable cascading operations
Explanation:
Scattering formulations relate incoming and outgoing waves without explicitly multiplying large growing exponentials by small decaying ones. Stable cascade products further control numerical conditioning.
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53Under the Webster horn approximation for a slowly varying duct area , which equation governs the pressure amplitude in a quiescent fluid?
Construction of transfer element for a varying cross-section duct
Hard
A.
B.
C.
D.
Correct Answer:
Explanation:
Webster's equation accounts for area variation through the divergence term . It reduces to the one-dimensional Helmholtz equation when is constant.
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54An exponential horn has . Substituting into Webster's equation produces which equation for ?
Construction of transfer element for a varying cross-section duct
Hard
A.
B.
C.
D.
Correct Answer:
Explanation:
The substitution removes the first-derivative term and yields an effective axial wavenumber . The exponential horn therefore has a cutoff at .
Incorrect! Try again.
55A plane wave is incident from a duct of area onto an abrupt expansion to area , with equal fluid properties and no mean flow. What is the pressure reflection coefficient?
Construction of transfer element for a varying cross-section duct
Hard
A.
B.
C.
D.
Correct Answer:
Explanation:
Continuity of pressure and volume velocity gives with . Substitution yields .
Incorrect! Try again.
56Two independent pressure solutions and are known for a varying-area element. With , define and . Which matrix maps to ?
Construction of transfer element for a varying cross-section duct
Hard
A.
B.
C.
D.
Correct Answer:
Explanation:
Because for a constant coefficient vector , elimination of gives .
Incorrect! Try again.
57A rotor with blades interacts with a stator containing vanes. Under the Tyler–Sofrin model, which circumferential mode orders can occur at the th blade-passing harmonic?
Fan noise source modelling
Hard
A., with no additional mode orders
B., where is any integer
C., independent of interaction order
D., where is any positive integer
Correct Answer: , where is any integer
Explanation:
Rotor periodicity supplies order , while scattering by the stator shifts the order by integer multiples of . Sign conventions may replace by without changing the set.
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58Broadband fan noise is expanded into duct modes with random complex amplitudes . Which quantity is required to retain both modal power and intermodal coherence?
Fan noise source modelling
Hard
A.The matrix without conjugation
B.The scalar sum only
C.The vector of mean modal phases only
D.The matrix
Correct Answer: The matrix
Explanation:
The cross-spectral density matrix contains modal autospectra on its diagonal and complex coherence information in its off-diagonal terms.
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59In a low-Mach-number acoustic analogy for a fan, how are blade thickness noise and unsteady loading noise most naturally classified?
Fan noise source modelling
Hard
A.Thickness is monopole-like; loading is dipole-like
B.Both are purely monopole source mechanisms
C.Both are purely quadrupole source mechanisms
D.Thickness is dipole-like; loading is monopole-like
Correct Answer: Thickness is monopole-like; loading is dipole-like
Explanation:
Blade displacement produces a thickness or volume source analogous to a monopole distribution, while fluctuating aerodynamic forces produce loading noise represented primarily by dipoles.
Incorrect! Try again.
60A source distribution on a circular fan plane is proportional to . In a perfectly axisymmetric duct, which circumferential acoustic modes can it directly excite?
Fan noise source modelling
Hard
A.Only modes with circumferential order
B.All cut-on modes regardless of circumferential order
C.All modes satisfying
D.Only modes with circumferential order
Correct Answer: Only modes with circumferential order
Explanation:
Azimuthal orthogonality makes the coupling integral vanish unless the source and acoustic mode have the same Fourier order. Radial overlap then determines which radial modes are excited.
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