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59
References
1. A.F. Heneghan, A.D.J. Haymet, Liquid-to-crystal nucleation: A new generation lag-time
apparatus. J. Chem. Phy. 117, 5319–5327 (2002)
2. A.F. Heneghan, P.W. Wilson, G.M. Wang, A.D.J. Haymet, Liquid-to-crystal nucleation:
Automated lag-time apparatus to study supercooled liquids. J. Chem. Phy. 115, 7599–7608
(2001)
3. S. Jiang, J.H. ter Horst, Crystal nucleation rates from probability distributions of induction
times. Cryst. Growth Des. 11, 256–261 (2011)
4. S.A. Kulkarni, S.S. Kadam, H. Meekes, A.I. Stankiewicz, J.H. ter Horst, Crystal nucleation
kinetics from induction times and metastable zone widths. Cryst. Growth Des. 13, 2435–2440
(2013)
5. N. Maeda, Nucleation curves of model natural gas hydrates on a quasi-free water droplet.
AIChE J. 61, 2611–2617 (2015)
6. H.K. Abay, T.M. Svartaas, Multicomponent gas hydrate nucleation: The effect of the cooling
rate and composition. Energy Fuels 25, 42–51 (2011)
7. T.P. Adamova, A.S. Stoporev, A.P. Semenov, B.I. Kidyarov, A.Y. Manakov, Methane hydrate
nucleation on water-methane and water-decane boundaries. Thermochim. Acta 668, 178–184
(2018)
8. T.M. Svartaas, W. Ke, S. Tantciura, A.U. Bratland, Maximum likelihood estimation-a reliable
statistical method for hydrate nucleation data analysis. Energy Fuels 29, 8195–8207 (2015)
9. T.W. Barlow, A.D.J. Haymet, Alta - an automated lag-time apparatus for studying the nucleation
of supercooled liquids. Rev. Sci. Instrum. 66, 2996–3007 (1995)
10. A. Heneghan, A.D.J. Haymet, Nucleation of pure and AgI seeded supercooled water using an
automated lag time apparatus, in Nucleation and Atmospheric Aerosols 2000, ed. by B.N. Hale,
M. Kulmala (2000), pp. 439–442
11. A.F. Heneghan, P.W. Wilson, A.D.J. Haymet, Heterogeneous nucleation of supercooled water,
and the effect of an added catalyst. Proc. Natl. Acad. Sci. U.S.A. 99, 9631–9634 (2002)
12. N. Maeda, Nucleation curves of methane hydrate from constant cooling ramp methods. Fuel
223, 286–293 (2018)
13. N. Maeda, D. Wells, N.C. Becker, P.G. Hartley, P.W. Wilson, A.D.J. Haymet, K.A. Kozielski,
Development of a high pressure automated lag time apparatus for experimental studies and
statistical analyses of nucleation and growth of gas hydrates. Rev. Sci. Instrum. 82, 065109
(2011)
14. N. Maeda, Measurements of gas hydrate formation probability distributions on a quasi-free
water droplet. Rev. Sci. Instrum. 85, 065115 (2014)
15. N. Maeda, Nucleation curves of methane—propane mixed gas hydrates in hydrocarbon oil.
Chem. Eng. Sci. 155, 1–9 (2016)
16. N. Maeda, Nucleation curves of methane-propane mixed gas hydrates in the presence of a
stainless steel wall. Fluid Phase Equilib. 413, 142–147 (2016)
17. E.F. May, R. Wu, M.A. Kelland, Z.M. Aman, K.A. Kozielski, P.G. Hartley, N. Maeda, Quantitative kinetic inhibitor comparisons and memory effect measurements from hydrate formation
probability distributions. Chem. Eng. Sci. 107, 1–12 (2014)
18. N. Maeda, Nucleation curve of carbon dioxide hydrate from a linear cooling ramp method. J.
Phys. Chem. A 123, 7911–7919 (2019)
19. J.J. Sakurai, Modern Quantum Mechanics (Addison-Wesley Publishing Company, Reading,
Massachusetts, 1994)
20. R.P. Feynman, R.B. Leighton, M. Sands, The Feynman Lectures on Physics (Addison-Wesley,
Reading, Massachusetts, 1963)
59
References
1. A.F. Heneghan, A.D.J. Haymet, Liquid-to-crystal nucleation: A new generation lag-time
apparatus. J. Chem. Phy. 117, 5319–5327 (2002)
2. A.F. Heneghan, P.W. Wilson, G.M. Wang, A.D.J. Haymet, Liquid-to-crystal nucleation:
Automated lag-time apparatus to study supercooled liquids. J. Chem. Phy. 115, 7599–7608
(2001)
3. S. Jiang, J.H. ter Horst, Crystal nucleation rates from probability distributions of induction
times. Cryst. Growth Des. 11, 256–261 (2011)
4. S.A. Kulkarni, S.S. Kadam, H. Meekes, A.I. Stankiewicz, J.H. ter Horst, Crystal nucleation
kinetics from induction times and metastable zone widths. Cryst. Growth Des. 13, 2435–2440
(2013)
5. N. Maeda, Nucleation curves of model natural gas hydrates on a quasi-free water droplet.
AIChE J. 61, 2611–2617 (2015)
6. H.K. Abay, T.M. Svartaas, Multicomponent gas hydrate nucleation: The effect of the cooling
rate and composition. Energy Fuels 25, 42–51 (2011)
7. T.P. Adamova, A.S. Stoporev, A.P. Semenov, B.I. Kidyarov, A.Y. Manakov, Methane hydrate
nucleation on water-methane and water-decane boundaries. Thermochim. Acta 668, 178–184
(2018)
8. T.M. Svartaas, W. Ke, S. Tantciura, A.U. Bratland, Maximum likelihood estimation-a reliable
statistical method for hydrate nucleation data analysis. Energy Fuels 29, 8195–8207 (2015)
9. T.W. Barlow, A.D.J. Haymet, Alta - an automated lag-time apparatus for studying the nucleation
of supercooled liquids. Rev. Sci. Instrum. 66, 2996–3007 (1995)
10. A. Heneghan, A.D.J. Haymet, Nucleation of pure and AgI seeded supercooled water using an
automated lag time apparatus, in Nucleation and Atmospheric Aerosols 2000, ed. by B.N. Hale,
M. Kulmala (2000), pp. 439–442
11. A.F. Heneghan, P.W. Wilson, A.D.J. Haymet, Heterogeneous nucleation of supercooled water,
and the effect of an added catalyst. Proc. Natl. Acad. Sci. U.S.A. 99, 9631–9634 (2002)
12. N. Maeda, Nucleation curves of methane hydrate from constant cooling ramp methods. Fuel
223, 286–293 (2018)
13. N. Maeda, D. Wells, N.C. Becker, P.G. Hartley, P.W. Wilson, A.D.J. Haymet, K.A. Kozielski,
Development of a high pressure automated lag time apparatus for experimental studies and
statistical analyses of nucleation and growth of gas hydrates. Rev. Sci. Instrum. 82, 065109
(2011)
14. N. Maeda, Measurements of gas hydrate formation probability distributions on a quasi-free
water droplet. Rev. Sci. Instrum. 85, 065115 (2014)
15. N. Maeda, Nucleation curves of methane—propane mixed gas hydrates in hydrocarbon oil.
Chem. Eng. Sci. 155, 1–9 (2016)
16. N. Maeda, Nucleation curves of methane-propane mixed gas hydrates in the presence of a
stainless steel wall. Fluid Phase Equilib. 413, 142–147 (2016)
17. E.F. May, R. Wu, M.A. Kelland, Z.M. Aman, K.A. Kozielski, P.G. Hartley, N. Maeda, Quantitative kinetic inhibitor comparisons and memory effect measurements from hydrate formation
probability distributions. Chem. Eng. Sci. 107, 1–12 (2014)
18. N. Maeda, Nucleation curve of carbon dioxide hydrate from a linear cooling ramp method. J.
Phys. Chem. A 123, 7911–7919 (2019)
19. J.J. Sakurai, Modern Quantum Mechanics (Addison-Wesley Publishing Company, Reading,
Massachusetts, 1994)
20. R.P. Feynman, R.B. Leighton, M. Sands, The Feynman Lectures on Physics (Addison-Wesley,
Reading, Massachusetts, 1963)
