System and method for broadband acoustic source
A system includes a carrier and a sound emitting member secured to the carrier. The sound emitting member includes a first mass coupled to the carrier by a first spring and a second mass coupled to the first mass by a second spring. The system also includes an actuator configured to transmit energy to the sound emitting member.
1 . An acoustic transmitter system, comprising:
a carrier;
a sound emitting member secured to the carrier, the sound emitting member configured to operate in a wellbore fluid, the sound emitting member comprising:
a first mass coupled to the carrier by a first spring; and
a second mass coupled to the first mass by a second spring;
wherein an inner surface of the sound emitting member is sealed from the wellbore fluid by one or more seals; and
an actuator configured to transmit energy to the sound emitting member.
2 . The acoustic transmitter system of claim 1 , further comprising:
a pressure compensation medium at least partially disposed within the carrier, wherein at least one of the first mass and the second mass is in contact with the pressure compensation medium.
3 . The acoustic transmitter system of claim 2 , where at least one of the first mass and the second mass is in contact with the wellbore fluid.
4 . The acoustic transmitter system of claim 1 , wherein the energy transmitted by the actuator comprises at least one periodic movement having an amplitude, and wherein at least one of the first spring and the second spring is configured to provide a preload to the actuator that compresses the actuator by a compression length that is greater than the amplitude.
5 . The acoustic transmitter system of claim 4 , wherein the at least one of the first spring and the second spring provides the preload to the actuator when the actuator is not actuating.
6 . The acoustic transmitter system of claim 1 , wherein the energy transmitted by the actuator comprises at least one periodic movement having a first actuating frequency and a second actuating frequency.
7 . The acoustic transmitter system of claim 6 , wherein the sound emitting member is configured to emit an acoustic wave into an environment at least partially surrounding the acoustic transmitter system, and wherein the acoustic wave comprises a first frequency and a second frequency, wherein at least one of the first and the second frequency is within a predefined range from at least one of the first actuating frequency and the second actuating frequency.
8 . The acoustic transmitter system of claim 1 , wherein the first mass and the second mass are in a stacked configuration.
9 . The acoustic transmitter system of claim 1 , wherein the first mass, the second mass, and the second spring are made of one integral part.
10 . The acoustic transmitter system of claim 9 , wherein the second spring has a thickness that is less than a first thickness of the first mass and a second thickness of the second mass.
11 . A method for making acoustic measurements in a wellbore environment, the method comprising:
disposing an acoustic receiver into a wellbore;
disposing an acoustic transmitter system into the wellbore, the acoustic transmitter system comprising:
a carrier;
a sound emitting member secured to the carrier, the sound emitting member comprising:
a first mass coupled to the carrier by a first spring; and
a second mass coupled to the first mass by a second spring, wherein an inner surface of the sound emitting member is sealed from a wellbore fluid by one or more seals; and
an actuator configured to transmit energy to the sound emitting member;
emitting an acoustic wave from the sound emitting member into the wellbore in response to the energy transmitted from the actuator; and
receiving a received acoustic wave, at the receiver, in response to the emitted acoustic wave.
12 . The method of claim 11 , wherein the acoustic transmitter system further comprises:
a pressure compensation medium at least partially disposed within the carrier, wherein at least one of the first mass and the second mass is in contact with the pressure compensation medium.
13 . The method of claim 12 , further comprising:
disposing the wellbore fluid within the wellbore, wherein the at least one of the first mass and the second mass is in contact with the wellbore fluid.
14 . The method of claim 13 , wherein the energy transmitted by the actuator comprises at least one periodic movement having an amplitude, and wherein the method further comprises:
providing, by at least one of the first spring and the second spring, a preload to the actuator that compresses the actuator by a compression length that is greater than the amplitude.
15 . The method of claim 14 , wherein the at least one of the first spring and the second spring provides the preload to the actuator when the actuator is not actuating.
16 . The method of claim 11 , wherein the energy transmitted by the actuator comprises at least one periodic movement having a first actuating frequency and a second actuating frequency.
17 . The method of claim 16 , wherein the received acoustic wave comprises a first frequency and a second frequency, wherein at least one of the first frequency and the second frequency is within a predefined range from at least one of the first actuating frequency and the second actuating frequency.
18 . The method of claim 11 , wherein the first mass and the second mass are in a stacked configuration.
19 . The method of claim 11 , wherein the first mass, the second mass, and the second spring are made of one integral part.
20 . The method of claim 19 , wherein the second spring has a thickness that is less than a first thickness of the first mass and a second thickness of the second mass.