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Related Concept Videos

Heart Sounds01:15

Heart Sounds

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Heart sounds are generated by the turbulence in blood flow due to the closing of heart valves. These sounds are best perceived slightly away from the valves, where the blood flow disseminates the sound.
Auscultation is the process of listening to these internal body sounds using a stethoscope. The heart produces four types of sounds, but only two—S1 and S2—can usually be heard with a stethoscope.
S1, also known as the "lub" sound, is caused by the closure of atrioventricular (A-V)...
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Soundness of Cement01:17

Soundness of Cement

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The soundness of cement refers to the ability of cement paste to retain its volume after setting. Unsound cement can lead to expansion and structural damage due to the presence of free lime, magnesia, and calcium sulfate. Free lime hydrates very slowly, expanding and causing unsoundness, which is difficult to detect because it intercrystallizes with other compounds. Magnesia also reacts with water, forming crystals that can disrupt the cement's structure. Calcium sulfate can create...
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Korotkoff Sounds01:12

Korotkoff Sounds

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Korotkoff sounds are the specific sounds heard while measuring blood pressure using a sphygmomanometer, typically with a stethoscope or a Doppler device. They are named after Russian physician Nikolai Korotkov, who first described them in 1905. These sounds correspond to turbulent blood flow in the artery as the blood pressure cuff is gradually released after inflation.
During blood pressure assessment, inflating the cuff 30 millimeters of mercury above the patient's systolic blood pressure...
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Sound Waves01:01

Sound Waves

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Sound waves can be thought of as fluctuations in the pressure of a medium through which they propagate. Since the pressure also makes the medium's particles vibrate along its direction of motion, the waves can be modeled as the displacement of the medium's particles from their mean position.
Sound waves are longitudinal in most fluids because fluids cannot sustain any lateral pressure. In solids, however, shear forces help in propagating the disturbance in the lateral direction as well....
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Sound Intensity00:58

Sound Intensity

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The loudness of a sound source is related to how energetically the source is vibrating, consequently making the molecules of the propagation medium vibrate. To measure the loudness of a source, the physical quantity of interest is the intensity. This is defined as the energy emitted per unit of time per unit of area perpendicular to the sound wave's propagation direction. Since the total energy is greater if the source vibrates for a longer duration and over a larger area, dividing the...
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Speed of Sound in Gases01:08

Speed of Sound in Gases

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The speed of sound in a gaseous medium depends on various factors. Since gases constitute molecules that are free to move, they are highly compressible. Hence, sound waves travel slowly through gases. Thermodynamics helps us understand the relationship between pressure, volume, and temperature of gases, thus, the speed of sound in an ideal gas can be determined using the laws of thermodynamics. At the same time, Newton's laws of motion and the continuity equation of fluid dynamics also come...
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Vocal fatigue.

The Annals of otology, rhinology, and laryngology·1983
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Reply to Block and Gould's "vocal therapy in lieu of surgery for contact granuloma: a case report".

The Journal of speech and hearing disorders·1975
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Untangling stuttering: a tour through the theory thicket.

ASHA·1975
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Age recognition from voice.

Journal of speech and hearing research·1966
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COMMENTS ON INVESTIGATING LISTENER REACTION TO SPEECH DISFLUENCY.

The Journal of speech and hearing disorders·1965
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BREATHINESS AND PHONATION LENGTH.

The Journal of speech and hearing disorders·1963
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Comment on "Methodological variables affecting phonational frequency range in adults".

The Journal of speech and hearing disorders·1990
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Comment on "Concomitant speech and language disorders in stuttering children: a critique of the literature".

The Journal of speech and hearing disorders·1990
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The Iowa Articulation Norms Project and its Nebraska replication.

The Journal of speech and hearing disorders·1990
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Normative data in quiet, broadband noise, and competing message for Northwestern University Auditory Test No. 6 by a female speaker.

The Journal of speech and hearing disorders·1990
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A sindscal analysis of perceptual features for consonants produced by esophageal and tracheoesophageal talkers.

The Journal of speech and hearing disorders·1990
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Patient compliance with cleft palate team regimens.

The Journal of speech and hearing disorders·1990
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When are speech sounds learned?

E K Sander

    The Journal of Speech and Hearing Disorders
    |February 1, 1972
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