Claims
- 1. In seismic exploration wherein seismic reflection signals are obtained from subsurface reflection geometry, the method of correcting said seismic reflection signals to zero source-to-receiver times comprising:
- (a) gathering common offset seismic reflection signals into sets having the same half offset and a common midpoint
- (b) moveout correcting the common offset gathered seismic signals in each of said common midpoint seismic gathers for the time differentials in the occurrence of the primary reflection signals between adjacent receivers along the line of exploration cause by normal moveout from horizontal subsurface reflectors
- (c) moveout correcting the common offset gathered seismic signals in each of said common midpoint seismic gathers to compensate for the time differentials in the occurrence of the primary reflection signals between adjacent receivers along the line of exploration caused by subsurface dipping and diffraction events, whereby arbitrary source-to-receiver seismic reflection signals are moveout corrected to zero source-to-receiver seismic signals.
- (d) stacking the common offset moveout corrected seismic reflection signals over the midpoint variables, and
- (e) summing said stacked common offset moveout corrected seismic reflection signals over the offset variables for each midpoint to produce a common offset seismic record section in which the subsurface dipping and diffraction events are stacked with a dip independent velocity parameter, thereby providing a common offset seismic record section improved in signal-to-noise ratio.
- 2. The method of claim 1 wherein the step of correcting said seismic signals for time differentials caused by dipping and diffraction events is carried out in accordance with
- T.sup.2 =h.sup.2 T.sub.O.sup.2 /[h.sup.2 -(m-x).sup.2 ],0<.vertline.m-x.vertline.<h (9)
- T=T.sub.o m=x
- where
- T is the time of reflection on a seismic input signal,
- To is the time of reflection on an idealized seismic output signal with zero source-to-receiver offset,
- h is one half the horizontal offset distance between the source and receiver
- m is the midpoint surface location between source and receiver, and
- x is the surface location where the seismic signals will be stacked.
- 3. In seismic exploration wherein seismic reflection signals are obtained from subsurface reflection geometry, the method of moveout correcting said seismic reflection signals to zero source-to-receiver times and using said moveout correction to perform a dip independent velocity determination, comprising the steps of:
- a. selecting a plurality of surface locations X,
- b. selecting a sample test velocity V.sub.AZ,
- c. selecting a set of overlapping time windows W,
- d. gathering common offset seismic reflection signals for each of said selected surface locations X having the same half offset h and common midpoint m,
- e. moveout correcting the common offset gathered seismic signals for each half offset h and each selected time window W in accordance with the expression:
- T.sup.2 =h.sup.2 T.sub.o.sup.2 /[h-(m-x).sup.2 ]+4h.sup.2 /V.sub.AZ.sup.2
- where
- T is the time of reflection on a seismic input signal,
- T.sub.o is the time of reflection on an idealized seismic output signal with zero receiver offset,
- h is one half the horizontal offset distance between the source and receiver,
- m is the midpoint surface location between source and receiver, and
- X is the surface location where the seismic signals will be stacked,
- f. stacking the common offset moveout corrected seismic signals over the midpoint variables .vertline.m-x.vertline.<h,
- g. determining a semblance function SEM for all half offsets h for each time window W for the stacked moveout corrected seismic signals in accordance with the expression: ##EQU2## where, N.sub.H =number of half offsets h
- f.sub.WhV (t)=the stacked moveout corrected seismic signals among the corresponding time windows W, pertaining to the different half offsets h for the selected test velocity V.sub.AZ, and
- h. repeating steps (c) through (g) for each of a plurality of test velocities V.sub.AZ, and
- i. selecting the velocity V.sub.AZ that yields the largest semblance function SEM as the dip independent velocity.
Parent Case Info
This is a continuation of copending application Ser. No. 248,173, filed Mar. 30, 1981, now abandoned.
US Referenced Citations (9)
Continuations (1)
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Number |
Date |
Country |
Parent |
248173 |
Mar 1981 |
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