Detecting Seismic Data in a Wellbore
In one general embodiment, a seismic tool system includes a cable adapted to be deployed within a borehole; and one or more seismic tools suspendable from the cable in the borehole. At least one of the seismic tools includes at least one seismic sensor enclosed within a housing; one or more rollers attached to the housing and adapted to engage the borehole; and a bow spring attached to the housing and including one or more rollers adapted to engage the borehole. The one or more of the rollers are in acoustic communication with the seismic sensor.
1 . A seismic tool system comprising:
a cable adapted to be deployed within a borehole; and
one or more seismic tools suspendable from the cable in the borehole, each of the seismic tools comprising:
at least one seismic sensor enclosed within a housing;
one or more rollers attached to the housing and adapted to engage the borehole;
a bow spring attached to the housing and including one or more rollers adapted to engage the borehole,
wherein one or more of the rollers are in acoustic communication with the seismic sensor, and
wherein a radius of the bow spring is determined based at least in part on a diameter of the borehole.
2 . The system of claim 1 , wherein a longitudinal centerline of the housing is offset from a centerline of the borehole.
3 . The system of claim 2 , wherein the one or more rollers attached to the housing are aligned with the longitudinal centerline of the housing.
4 . The system of claim 1 , wherein the one or more rollers attached to the housing comprise wheels.
5 . The system of claim 4 , wherein the wheels are radially disposed less than approximately 180 degrees apart around a circumference of the housing.
6 . The system of claim 1 , wherein the seismic sensor comprises one of a geophone or a hydrophone.
7 . The system of claim 1 , wherein the cable is adapted to transmit one or more acoustic signals from the seismic sensor to a location on a terranean surface.
8 . The system of claim 1 , wherein the seismic tool is adapted to apply a clamping pressure to the borehole through engagement of the one or more rollers with the borehole.
9 . The system of claim 8 , wherein the clamping pressure is determined based at least in part on the diameter of the borehole.
10 . (canceled)
11 . A wellbore tool comprising:
a housing enclosing one or more seismic sensors;
one or more wheels attached to the housing; and
one or more rollers coupled to the housing through a bow spring attached to the housing, the bow spring adapted to apply a force substantially orthogonal to a longitudinal axis of the housing through the one or more rollers and one or more wheels,
wherein a radius of the bow spring is determined based at least in part on a diameter of a borehole.
12 . The wellbore tool of claim 11 , wherein the one or more wheels attached to the housing comprise roller bearings rotatably aligned with the longitudinal axis of the housing.
13 . The wellbore tool of claim 11 , wherein the one or more wheels are radially disposed less than approximately 180 degrees apart around a circumference of the housing.
14 . The wellbore tool of claim 11 , wherein the seismic sensors comprise one or more geophones or hydrophones.
15 . The wellbore tool of claim 11 , wherein the housing is adapted to be coupled to a cable, the cable adapted to deploy the wellbore tool into a borehole.
16 . The wellbore tool of claim 15 , wherein the cable is adapted to transmit one or more acoustic signals from the seismic sensors to a location on a terranean surface.
17 . The wellbore tool of claim 11 , wherein the force comprises a clamping pressure, the clamping pressure sufficient to engage the tool with a surface of a borehole disposed in a subterranean zone.
18 . The wellbore tool of claim 17 , wherein the clamping pressure is determined based at least in part on a diameter of the borehole.
19 . (canceled)
20 . The wellbore tool of claim 11 , wherein the longitudinal axis of the housing is offset from a longitudinal centerline of the tool.