Claims
- 1. For use with an ultrasonic transducer having a preselected resonant frequency f.sub.0, and comprising an open hollow shell and a vibratory element including a piezoelectric crystal mechanically coupled to said shell at one open end thereof, the method of lowering the Q of said transducer comprising the steps of:
- (a) measuring the Q of said transducer at said preselected resonant frequency,
- (b) preparing a mixture of RTV and a nonconductive particulate material in a predetermined weight ratio, said ratio depending on the measured Q and a desired final Q value,
- (c) pouring said mixture into said shell at an open end thereof remote from said one end, and
- (d) curing said mixture within said shell, whereby the Q of the transducer is lowered to the desired final value.
- 2. The method set forth in claim 1 wherein said measuring step (a) comprises the steps of:
- (e) connecting a variable frequency signal generator across said crystal,
- (f) locating a microphone adjacent said diaphragm externally of said shell,
- (g) energizing said signal generator at said resonant frequency f.sub.0,
- (h) measuring the output of said microphone at said resonant frequency,
- (i) varying the output frequency of said generator in one direction from said f.sub.0 to a frequency f.sub.1 at which the output from said microphone drops to substantially .sqroot.2/2 times said resonant frequency microphone output, and
- (j) varying the output frequency of said generator in the other direction from said f.sub.0 to a frequency f.sub.2 at which the output from said microphone drops to substantially .sqroot.2/2 times said resonant frequency microphone output, said measured Q being equal to f.sub.0 /(f.sub.1 - f.sub.2).
- 3. In the construction of an ultrasonic transducer which includes the step of providing a hollow shell open at one end and a vibratory element including a piezoelectric crystal mechanically coupled to said shell at an opposing end thereof, said transducer having a starting Q determined at least in part by vibrational characteristics of said vibratory element within said hollow shell, the method of adjusting the Q of said transducer to a desired final Q comprising the steps of:
- (a) preparing a mixture of RTV and a nonconductive particulate material in a predetermined weight ratio coordinated with both said starting Q and said final Q,
- (b) pouring said mixture into said shell at said open end therof remote from said one end such that said mixture overlies and contacts said vibrating element, and
- (c) curing said mixture within said shell to form a resilient mass adhered to said vibratory element and effective to lower the Q of said transducer to within preselected limits of said desired final Q.
- 4. The method set forth in claim 3 in which said ratio is empirically related to said measured Q and is in the range of 5/1 to 20/1 by weight of RTV to particulate material. Pg,40
- 5. In the method of constructing an ultrasonic transducer in accordance with claim 3 in which said transducer has a preselected maximum operating temperature, the improvement wherein said step (c) is carried out above said maximum operating temperature.
Parent Case Info
This is a division of application Ser. No. 560,245, filed Mar. 20, 1975, now U.S. Pat. No. 4,015,319.
US Referenced Citations (8)
Foreign Referenced Citations (1)
Number |
Date |
Country |
698,989 |
Oct 1953 |
UK |
Divisions (1)
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Number |
Date |
Country |
Parent |
560245 |
Mar 1975 |
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