Catalyst selection for improved lipid feedstock conversion
A reactor system includes a reactor that treats a lipid feedstock using a metal oxide catalyst to produce a treated stream comprising a bio-oil. The metal oxide catalyst includes catalyst particles having a diameter of 0.01 to 0.5 mm. The metal oxide catalyst can comprise calcium on alumina. The bio-oil has an increased proportion of transportation fuels relative to other techniques for processing lipid feedstocks.
1 . A method of processing a lipid feedstock, the method comprising:
feeding a lipid feedstock to a reactor comprising at least one bed of catalyst particles, wherein the catalyst particles comprise a metal oxide on an oxide support and promote combined ketonization and pyrolysis of the lipid feedstock to produce a treated stream; and
fractionating the treated stream to obtain a gaseous fraction and a liquid fraction, the liquid fraction comprising a bio-oil having a lower content of oxygen and impurities than the lipid feedstock, wherein the catalyst particles have a diameter of 0.01 mm to 5 mm.
2 . The method of claim 1 , wherein the catalyst particles have a diameter of 0.5 mm to 5 mm.
3 . The method of claim 1 , wherein the metal of the metal oxide is selected from Na, K, Cs, Ba, Mg, Ca, Sr, Cr, Mo, Mn, Fe, Co, Ni, Cu, Zn, Al, Y, Zr, Ti, Ce, and La, or a mixture thereof.
4 . The method of claim 3 , wherein the metal of the metal oxide is selected from:
Na, K, and Cs;
Ba, Mg, Ca, and Sr; and
Ce and La.
5 . The method of claim 3 , wherein the metal of the metal oxide is selected from:
a mixture of K and Ca;
a mixture of Ca and Mg;
a mixture of Ce and Mg;
a mixture of Ca and La;
a mixture of K and Ce;
a mixture of Ca and Ce;
a mixture of Mg, Ca, and Ce; and
a mixture of K, Ca, and Ce.
6 . The method of claim 1 , wherein the oxide support is selected from silica-alumina, zeolite, alumina, magnesium oxide, zirconia, and titanium oxide.
7 . The method of claim 6 , wherein the oxide support is alumina.
8 . The method of claim 1 , wherein a jet fuel A fraction comprises 30 to 34 wt % of the bio-oil.
9 . The method of claim 1 , wherein a fraction having a boiling point range of 75 to 200° C. comprises 32 to 35 wt % of the bio-oil.
10 . The method of claim 1 , further comprising subjecting the bio-oil to a catalytic hydroprocessing step to provide a hydroprocessed product.
11 . The method of claim 1 , wherein the bio-oil has an oxygen content of 10% to 40% of the oxygen content of the lipid feedstock.
12 . A reactor system for processing a lipid feedstock, the reactor system comprising:
a reactor containing at least one bed of catalyst particles, wherein the catalyst particles comprise a metal oxide on an oxide support and promote combined ketonization and pyrolysis of the lipid feedstock to produce a treated stream;
a lipid feedstock inlet for feeding the lipid feedstock to the reactor; and
a separator for receiving the treated stream from the reactor and fractionating the treated stream to obtain a gaseous fraction and a liquid fraction, the liquid fraction comprising a bio-oil having a lower content of oxygen and impurities than the lipid feedstock, wherein the catalyst particles have a diameter of 0.01 mm to 5 mm.
13 . The reactor system of claim 12 , wherein the catalyst particles have a diameter of 0.5 mm to 5 mm.
14 . The reactor system of claim 12 , wherein the metal of the metal oxide is selected from Na, K, Cs, Ba, Mg, Ca, Sr, Cr, Mo, Mn, Fe, Co, Ni, Cu, Zn, Al, Y, Zr, Ti, Ce, and La, or a mixture thereof.
15 . The reactor system of claim 14 , wherein the metal of the metal oxide is selected from:
Na, K, and Cs;
Ba, Mg, Ca, and Sr; and
Ce and La.
16 . The reactor system of claim 14 , wherein the metal of the metal oxide is selected from:
a mixture of K and Ca;
a mixture of Ca and Mg;
a mixture of Ce and Mg;
a mixture of Ca and La;
a mixture of K and Ce;
a mixture of Ca and Ce;
a mixture of Mg, Ca, and Ce; and
a mixture of K, Ca, and Ce.
17 . The reactor system of claim 12 , wherein the oxide support is selected from silica-alumina, zeolite, alumina, magnesium oxide, zirconia oxide, and titanium oxide.
18 . The reactor system of claim 17 , wherein the oxide support is alumina.