3.2 Optimization of Well Spacing and
Well Path
For infill well drilling, it is important to optimize the
well spacing. We need an appropriate well spacing
to enhance the recovery with an economical number
of wells. But assuring the safety of infill well
drilling work should be the first priority. Based on
results of the numerical modelling of pore pressure
redistribution of the neighbouring well, we divided
the geostress disturbance area into three parts
according to the disturbance level. These results are
used for optimized design of well spacing and well
path. Usually, we should check the following
questions when we make the design:
Would the infill well go through the geostress
disturbance zone?
If yes, is it possible to avoid? If this can not be
avoided, how to minimize the length of the affected
section?
If not, which well spacing should be the best?
After optimization, we need appropriate bottom
hole assembly (BHA) and monitoring techniques to
ensure that the drill bit is go along the predesigned
well path as well as possible.
Recent drilling practices of infill well within the
Fuling shale gas field demonstrated that these two
strategies are effective to reduce the drilling troubles
and improve the drilling efficiency. For example,
after the application of these strategies, the average
ROP of an infill well (Y29-S1HF) with depth of
4245m reaches 12.02m/h, and no drilling troubles or
accidents occur.
4 CONCLUSIONS
We first summarized the drilling troubles and
accidents in the early infill-drilling practices in
Fuling shale gas field, and gave two representative
examples. Then two practical strategies for these
drilling challenges were put forward. And the
strategies were proven to be effective by current
infill drilling practices. Based on this study, we can
conclude that:
Wide application of hydraulic fracturing in
Fuling shale gas field have changed the geostress
significantly. Such kind of geostress disturbance
currently still can not be assessed quantitatively with
its economic and effectiveness, which push the infill
drilling into great risk.
Gas kick, overflows, loss circulation, pipe
sticking and breaking are the main drilling troubles
due to geostress disturbance. And sometimes, the
drilling fluid can be polluted by the fracturing fluid.
The numerical modeling of pore pressure
redistribution after fracturing helps us to better
understand the current geostress distribution.
Optimized design of well spacing and well path
with the aid of numerical simulation of pore
pressure redistribution is an effective way for the
infill drilling.
ACKNOWLEDGEMENTS
This study is supported by the State Key Laboratory
of Shale Oil and Gas Enrichment Mechanisms and
Effective Development (No. ZC0607-0016).
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