17.2
종파인 음파는 공간적 및 시간적 좌표의 함수로 변하는 변위 진폭으로 모델링될 수 있습니다. 매체의 기둥이 변위됨에 따라 연속적인 기둥도 변위됩니다. 연속적인 변위가 상대적으로 다르기 때문에 주변 압력과의 압력 차이가 발생합니다. 게이지 압력은 매체에 따라 다릅니다.
압…
소리가 매체를 통해 이동하는 것을 생각해 보십시오. 세로 교란은 연속적인 기둥 사이에 압력 차이를 생성하고, 이는 진동을 겪습니다.
x축을 따라 단면적 A가 있는 매체의 방해받지 않는 원통을 고려하십시오. y로 주어지는 세로 변위는 파동 함수입니다.
파동이 이동함에 따라 x-1 및 x-2의 끝은 각각 y-1 및 y-2로 변위됩니다. 후자가 더 크면 실린더가 팽창하고 압력이 주변 압력에서 떨어집니다.
초기 부피가 알려져 있으며 부피의 변화가 파생됩니다. 그런 다음 부피의 분수 변화가 얻어집니다.
게이지 압력을 얻는 벌크 계수의 정의를 상기하십시오. 단순화하면 게이지 압력은 파동으로 관찰됩니다.
게이지 압력은 변위가 0인 지점에서 최대이고 변위가 최대인 지점에서 최소입니다.
그 진폭은 변위 진폭, 매체의 벌크 계수 및 파수에 비례합니다. 따라서 파장에 반비례합니다.
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Q1: How do sound waves create pressure differences in a medium?
Sound waves are longitudinal disturbances that displace successive columns of a medium by different amounts. When one column displaces more than an adjacent column, the medium expands or compresses, creating a pressure difference from the surrounding pressure. This pressure variation propagates through the medium as the wave travels, forming the basis of sound wave behavior.
Q2: What is the relationship between displacement and gauge pressure in sound waves?
Gauge pressure in a sound wave is directly related to particle displacement through the medium's bulk modulus. Gauge pressure is maximum at points where particle displacement is zero (compression and rarefaction zones) and minimum where displacement is maximum. The pressure amplitude depends on displacement amplitude, bulk modulus, and wave number, making shorter wavelengths produce greater pressure amplitudes.
Q3: Why is gauge pressure zero at maximum displacement points?
At maximum displacement points, particles in the medium have moved farthest from their equilibrium positions but are not compressing or expanding relative to surrounding columns. This creates a neutral pressure state where gauge pressure equals zero. Compression occurs at zero displacement, producing maximum positive pressure, while rarefaction produces maximum negative pressure.
Q4: How does wavelength affect pressure amplitude in sound waves?
Pressure amplitude is inversely proportional to wavelength. Shorter wavelengths produce greater pressure amplitudes, while longer wavelengths produce smaller pressure amplitudes. This relationship arises because pressure amplitude depends on the wave number, which is inversely related to wavelength, making high-frequency sound waves generate larger pressure fluctuations.
Q5: What role does bulk modulus play in sound wave pressure?
Bulk modulus quantifies a medium's resistance to compression and directly determines gauge pressure from particle displacement. The relationship between instantaneous displacement and gauge pressure is derived through bulk modulus, which links the material's mechanical properties to pressure fluctuations. A higher bulk modulus produces greater pressure changes for the same displacement amplitude.
Q6: How do compression and rarefaction zones differ in pressure?
Compression zones occur where medium particles aggregate closely together, producing the most positive pressure. Rarefaction zones occur where particles are farthest apart, producing the most negative pressure. Between these zones, at maximum particle displacement, pressure returns to zero, creating the oscillating pressure pattern characteristic of sound waves.
Q7: What determines the amplitude of pressure fluctuations in sound waves?
Pressure amplitude is proportional to three factors: displacement amplitude, the bulk modulus of the medium, and the wave number. Since wave number is inversely proportional to wavelength, shorter wavelengths generate larger pressure amplitudes. These relationships show that stiffer materials and higher-frequency waves produce greater pressure variations.