GAS-DENSITY DOES NOT AFFECT PULMONARY ACOUSTIC TRANSMISSION IN NORMAL MEN

被引:26
作者
MAHAGNAH, M
GAVRIELY, N
机构
[1] TECHNION ISRAEL INST TECHNOL,BRUCE RAPPAPORT FAC MED,DEPT PHYSIOL & BIOPHYS,PULM PHYSIOL UNIT,IL-31096 HAIFA,ISRAEL
[2] TECHNION ISRAEL INST TECHNOL,RAPPAPORT INST RES MED SCI,IL-31096 HAIFA,ISRAEL
关键词
TRANSFER FUNCTION; TRANSIT TIME; BREATH SOUNDS;
D O I
10.1152/jappl.1995.78.3.928
中图分类号
Q4 [生理学];
学科分类号
071003 ;
摘要
Fremitus, the transmission of sound and vibration from the mouth to the chest wall, has long been used clinically to examine the pulmonary system. Recently, modern technology has become available to measure the acoustic transfer function (TF) and transit times (TT) of the pulmonary system. Because sound speed is inversely proportional to the square root of gas density in free gas, but not in porous media, we measured the effect of air and Heliox (80% He-20% O-2) breathing on pulmonary sound transmission in six healthy subjects to investigate the mechanism of sound transmission. Wide-band noise (75-2,000 Hz) was ''injected'' into the mouth and picked up over the trachea and chest wall. The averaged power spectra, TF, phase, and coherence were calculated using a fast Fourier transform-based algorithm. The phase data were used to calculate TT as a function of frequency. TF was found to consist of a low-pass filter property with essentially flat transmitted energy to 300 Hz and exponential decline to 600 Hz at the anterior right upper lobe (CR) and flat transmission to 100 Hz with exponential decline to 150 Hz at the right posterior base (BR). TF was not affected by breathing Heliox. The average TT values, calculated from the slopes of the averaged phase, were 1.5 +/- 0.5 ms for trachea to CR and 5.2 +/- 0.5 ms for trachea to BR transmission during air breathing. During Heliox breathing, the values of TT were 1.5 +/- 0.5 ms and 4.9 +/- 0.5 ms from the trachea to CR and from the trachea to BR locations, respectively. These results suggest that sound transmission in the respiratory system is dominated by wave propagation through the parenchymal porous structure.
引用
收藏
页码:928 / 937
页数:10
相关论文
共 27 条
[1]  
[Anonymous], 1987, THEORETICAL ACOUSTIC
[2]   THE EFFECT OF LOW-DENSITY GAS BREATHING ON VESICULAR LUNG SOUNDS [J].
AUSTRHEIM, O ;
KRAMAN, SS .
RESPIRATION PHYSIOLOGY, 1985, 60 (02) :145-155
[3]  
BAUGHMAN RP, 1986, AM REV RESPIR DIS, V134, P167
[4]  
BENDAT JS, 1980, ENG APPLICATIONS COR, P52
[5]  
Buller A. J., 1956, LANCET, V29, P649
[6]   LONGITUDINAL ELASTIC WAVE-PROPAGATION IN PULMONARY PARENCHYMA [J].
BUTLER, JP ;
LEHR, JL ;
DRAZEN, JM .
JOURNAL OF APPLIED PHYSIOLOGY, 1987, 62 (04) :1349-1355
[7]   ACOUSTIC TRANSMISSION OF THE RESPIRATORY SYSTEM USING SPEECH STIMULATION [J].
COHEN, A ;
BERSTEIN, AD .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 1991, 38 (02) :126-132
[8]   SOUND TRANSFER-FUNCTION OF THE CONGESTED CANINE LUNG [J].
DONNERBERG, RL ;
DRUZGALSKI, CK ;
HAMLIN, RL ;
DAVIS, GL ;
CAMPBELL, RM ;
RICE, DA .
BRITISH JOURNAL OF DISEASES OF THE CHEST, 1980, 74 (01) :23-31
[9]   RESPIRATORY HEALTH SCREENING USING PULMONARY-FUNCTION TESTS AND LUNG SOUND ANALYSIS [J].
GAVRIELY, N ;
NISSAN, M ;
CUGELL, DW ;
RUBIN, AHE .
EUROPEAN RESPIRATORY JOURNAL, 1994, 7 (01) :35-42
[10]   SPECTRAL CHARACTERISTICS OF NORMAL BREATH SOUNDS [J].
GAVRIELY, N ;
PALTI, Y ;
ALROY, G .
JOURNAL OF APPLIED PHYSIOLOGY, 1981, 50 (02) :307-314