7,993 research outputs found
Fuselage shell and cavity response measurements on a DC-9 test section
A series of fuselage shell and cavity response measurements conducted on a DC-9 aircraft test section are described. The objectives of these measurements were to define the shell and cavity model characteristics of the fuselage, understand the structural-acoustic coupling characteristics of the fuselage, and measure the response of the fuselage to different types of acoustic and vibration excitation. The fuselage was excited with several combinations of acoustic and mechanical sources using interior and exterior loudspeakers and shakers, and the response to these inputs was measured with arrays of microphones and accelerometers. The data were analyzed to generate spatial plots of the shell acceleration and cabin acoustic pressure field, and corresponding acceleration and pressure wavenumber maps. Analysis and interpretation of the spatial plots and wavenumber maps provided the required information on modal characteristics, structural-acoustic coupling, and fuselage response
A New Class of non-Hermitian Quantum Hamiltonians with PT Symmetry
In a remarkable development Bender and coworkers have shown that it is
possible to formulate quantum mechanics consistently even if the Hamiltonian
and other observables are not Hermitian. Their formulation, dubbed PT quantum
mechanics, replaces hermiticity by another set of requirements, notably that
the Hamiltonian should be invariant under the discrete symmetry PT, where P
denotes parity and T denotes time reversal. All prior work has focused on the
case that time reversal is even (T^2 = 1). We generalize the formalism to the
case of odd time reversal (T^2 = -1). We discover an analogue of Kramer's
theorem for PT quantum mechanics, present a prototypical example of a PT
quantum system with odd time reversal, and discuss potential applications of
the formalism. Odd time reversal symmetry applies to fermionic systems
including quarks and leptons and a plethora of models in nuclear, atomic and
condensed matter physics. PT quantum mechanics makes it possible to enlarge the
set of possible Hamiltonians that physicists could deploy to describe
fundamental physics beyond the standard model or for the effective description
of condensed matter phenomena.Comment: Replaced submitted version with accepted version; to appear in Phys
Rev
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