We suggest a new gas hydrate-based desalination process using water-immiscible hydrate formers; cyclopentane (CP) and cyclohexane (CH) as secondary hydrate guests to alleviate temperature requirements for hydrate formation. The hydrate formation reactions were carried out in an isobaric condition of 3.1 MPa to find the upper temperature limit of CO 2 hydrate formation. Simulated produced water (8.95 wt % salinity) mixed with the hydrate formers shows an increased upper temperature limit from −2 °C for simple CO 2 hydrate to 16 and 7 °C for double (CO 2 + CP) and (CO 2 + CH) hydrates, respectively. The resulting conversion rate to double hydrate turned out to be similar to that with simple CO 2 hydrate at the upper temperature limit. Hydrate formation rates ( R f ) for the double hydrates with CP and CH are shown to be 22 and 16 times higher, respectively, than that of the simple CO 2 hydrate at the upper temperature limit. Such mild hydrate formation temperature and fast formation kinetics indicate increased energy efficiency of the double hydrate system for the desalination process. Dissociated water from the hydrates shows greater than 90% salt removal efficiency for the hydrates with the secondary guests, which is also improved from about 70% salt removal efficiency for the simple hydrates.
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Cha et al. (2013) studied this question.
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