hydrate-based sequestration in submarine sediments shows great potential for carbon emission reduction. Considering the proportional relationship of CO
2
and water for hydrates formation
their existing ratio largely determines the CO
2
sequestration density and phase state. Here
this work focuses on determining the optimal ratio of CO
2
to seawater in sediments simulated with 20-40 mesh (0.42-0.85 mm) quartz sand
in order to maximize CO
2
hydrate conversion in sediments. The results show that the conversion rate of CO
2
hydrate increases with the initial water saturation
reaching 15.3% at 80% initial water saturation. The optimal CO
2
hydrate formation occurs at 30% initial water saturation
with the corresponding CO
2
storage density in hydrate form of 33.09 kg·m
-3
and the hydrate saturation of 22.3%. However
CO
2
hydrate conversion rate is 10%
which implies that most CO
2
still exists in liquid state
despite the presence of free water. The total CO
2
sequestration density is negatively correlated with the initial water saturation
and at 10% initial water saturation
398.73 kg·m
-3
of CO
2
is sequestered
of which only 18.02 kg·m
-3
is hydrated. Additionally
the lower initial water saturation corresponds to the shorter time to achieve
t
90
of CO
2
consumption
and the
water conversion rate to hydrate reaches 90% at 10% initial water saturation. In summary
adjusting the volume ratio of liquid CO
2
to seawater can effectively increase the sequestration amount of CO
2
hydrates
but methods to increase CO
2
conversion to hydrate still need to be established.
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