Household gas catalyst
𝗔𝘂𝘅𝗲𝗻𝘀 𝗰𝗮𝘁𝗮𝗹𝘆𝘀𝘁 𝗰𝗼𝗺𝗽𝗮𝗻𝘆
AE MERE RAB ME TJH SE FAIDA DENE WALA ILM OR QOBOOL HONE WALI NAIKI KA SAWAL KRTA HO 𝒔𝒂𝒘𝒂𝒍 𝒌𝒓𝒕𝒂 𝒉𝒐 𝒔𝒂𝒘𝒂𝒍 𝒌𝒓𝒕𝒂 𝒉𝒐
https://www.axens.net/our-locations/middle-east/axens-catalyst-arabia-ltd-acal
this companey requested to buy in stock of zyolite product as many times as its better catalyst to make all catalysts
NiMo/Al₂O₃ catalystNickel + molybdenumHydrotreating and coal liquefactionCoMo/Al₂O₃ catalystCobalt + molybdenumHydrodesulfurizationPt/Al₂O₃ catalystPlatinumCatalytic reforming and hydrogenationPd/Al₂O₃ catalystPalladiumHydrogenation reactionsZSM-5 zeolite catalystZeoliteCatalytic cracking and methanol-to-gasolineY Zeolite (USY) catalystZeoliteFluid catalytic cracking (FCC)Iron Fischer–Tropsch catalystIronConverting syngas into hydrocarbonsCobalt Fischer–Tropsch catalystCobaltSynthetic fuel production from syngasTungsten carbide catalystTungsten carbideSome coal liquefaction research
𝗠𝗶𝗻𝗲𝗿𝗮𝗹 𝗼𝗶𝗹 (𝗹𝗶𝗾𝘂𝗶𝗱 𝗽𝗮𝗿𝗮𝗳𝗳𝗶𝗻)
𝗣𝗮𝗿𝗮𝗳𝗳𝗶𝗻 𝘄𝗮𝘅
𝗣𝗲𝘁𝗿𝗼𝗹𝗲𝘂𝗺 𝗷𝗲𝗹𝗹𝘆
𝗦𝗼𝘆𝗯𝗲𝗮𝗻 𝗼𝗶𝗹
𝗟𝗶𝗻𝘀𝗲𝗲𝗱 𝗼𝗶𝗹
𝗥𝗼𝘀𝗶𝗻 (𝗽𝗶𝗻𝗲 𝗿𝗲𝘀𝗶𝗻)
𝗖𝗮𝗹𝗰𝗶𝘂𝗺 𝗰𝗮𝗿𝗯𝗼𝗻𝗮𝘁𝗲 (𝗖𝗮𝗖𝗢₃)
𝗧𝗮𝗹𝗰 (𝗠𝗴₃𝗦𝗶₄𝗢₁₀(𝗢𝗛)₂)
𝗦𝗶𝗹𝗶𝗰𝗮 (𝗦𝗶𝗢₂)
𝗕𝗲𝗻𝘁𝗼𝗻𝗶𝘁𝗲 𝗰𝗹𝗮𝘆
𝗞𝗮𝗼𝗹𝗶𝗻 𝗰𝗹𝗮𝘆
𝗚𝗿𝗮𝗽𝗵𝗶𝘁𝗲
𝗖𝗮𝗿𝗯𝗼𝗻 𝗯𝗹𝗮𝗰𝗸
𝗭𝗲𝗼𝗹𝗶𝘁𝗲
𝗖𝘆𝗹𝗶𝗻𝗱𝗲𝗿 𝗵𝗼𝘂𝘀𝗲 𝗵𝗼𝗹𝗱 𝗰𝘆𝗹𝗶𝗻𝗱𝗲𝗿𝘀 𝗮𝗱𝗱𝗶𝘁�Network Pakistan https://ap.wps.com/l/cbCaihkGqzd4I5ht?fbclid=IwDRjcAT2SoNjbGNrBPZKfHBkb2YBZXh0bgNhZW0CMTEAc3J0YwzhCBfaWQMMzUwNjgzNTMxNz4AAEek-_SSDd30KTe_m_58HdGbxhb4csUwEqso5oR91oz_N98zvBcV4ktvfu_rw_aem_A8P0tZIaFPu2XffYuuh_QA
Present in 𝗺𝗮𝗿𝗸𝗲𝘁
HR 508, Impulse™ HR 1058, HR 526, HR 616, HR 626, HF 454, HMC 868, HF 858, HM 848, SeLene™ LD, SeLene™ LD 241, SeLene™ LD 341, SeLene™ LD 541, SeLene™ LD 551, LD 412 R, HR 845, HR 855, HR 806, Craken®, SeLene™ LD 153, SeLene™ LD 153 X, SeLene™ LT 279, SeLene™ LD 273, SeLene™ LD 267 R, SeLene™ LD 269, SeLene™ LD 271, SeLene™ LD 277, SeLene™ LD 465, SeLene™ LD 485, SeLene™ LD 585, HR 504, HR 544, HR 608, HR 648
Yes. But one important correction first: catalysts do not normally “increase the amount of fuel” by adding energy from nothing. They accelerate reactions and can convert heavier hydrocarbons into lighter fuels, upgrade low-value feedstocks, or synthesize new hydrocarbons from syngas/methanol. For example, FCC catalysts convert heavy oil fractions into gasoline/LPG, while hydrocracking catalysts convert heavy molecules into lighter products.
Below is a large 300-item catalyst/material list, grouped by the fuel process where they are relevant.
1. FCC / cracking catalysts — petroleum → gasoline/LPG/olefins
# Catalyst / catalytic material Main application
1 USY zeolite FCC gasoline/LPG
2 REUSY zeolite FCC cracking
3 HY zeolite Hydrocarbon cracking
4 HZSM-5 Gasoline/propylene
5 ZSM-5 Olefin/gasoline upgrading
6 Beta zeolite Cracking/isomerization
7 Mordenite Hydrocarbon conversion
8 Ferrierite Olefin conversion
9 SAPO-11 Hydrocarbon upgrading
10 SAPO-34 Light olefins
11 SAPO-5 Hydrocarbon conversion
12 MCM-22 Hydrocarbon cracking
13 MCM-41 Cracking support
14 SBA-15 Cracking support
15 Al-MCM-41 Acidic cracking
16 γ-Al₂O₃ Catalyst support
17 SiO₂–Al₂O₃ Cracking
18 Amorphous silica-alumina FCC/cracking
19 Kaolin FCC matrix
20 Alumina Cracking support
21 Silica Catalyst support
22 Rare-earth exchanged Y FCC
23 Lanthanum-Y zeolite FCC
24 Cerium-Y zeolite FCC
25 Phosphorus-modified USY FCC
26 Rare-earth USY FCC
27 ZSM-5/FCC additive Propylene/gasoline
28 USY/Al₂O₃ composite Cracking
29 ZSM-5/Al₂O₃ Hydrocarbon conversion
30 Beta/Al₂O₃ Cracking
31 REY zeolite FCC
32 REHY zeolite FCC
33 Y-zeolite FCC
34 Ultra-stable Y FCC
35 Fluid catalytic cracking composite catalyst Petroleum cracking
36 Vanadium-passivated FCC catalyst Heavy-oil FCC
37 Nickel-passivated FCC catalyst Heavy-oil FCC
38 Antimony-passivated FCC catalyst Ni control
39 Magnesium-passivated FCC catalyst Metal tolerance
40 ZSM-5 olefin-selective additive Propylene/LPG
2. Hydrocracking catalysts — heavy petroleum → diesel/kerosene/gasoline
# Catalyst
41 Ni–Mo/Al₂O₃
42 Co–Mo/Al₂O₃
43 Ni–W/Al₂O₃
44 Ni–W/SiO₂–Al₂O₃
45 Ni–Mo/SiO₂–Al₂O₃
46 Co–Mo/SiO₂–Al₂O₃
47 NiMo/USY
48 NiW/USY
49 NiMo/Beta
50 NiW/Beta
51 NiMo/Y-zeolite
52 NiW/Y-zeolite
53 NiMo/USY–Al₂O₃
54 NiW/USY–Al₂O₃
55 NiMo/SAPO-11
56 NiW/SAPO-11
57 Pt/USY
58 Pd/USY
59 Pt/Beta
60 Pd/Beta
61 Pt/Y-zeolite
62 Pd/Y-zeolite
63 Pt/SiO₂–Al₂O₃
64 Pd/SiO₂–Al₂O₃
65 Pt/Al₂O₃
66 Pd/Al₂O₃
67 Ni/Al₂O₃
68 NiMo/zeolite
69 CoMo/zeolite
70 NiW/zeolite
Shell specifically describes zeolite as fundamental to breaking down heavy oil molecules during hydrocracking.
3. Hydrotreating / hydrodesulfurization catalysts
# Catalyst
71 CoMo/Al₂O₃
72 NiMo/Al₂O₃
73 NiW/Al₂O₃
74 CoW/Al₂O₃
75 NiMo/SiO₂–Al₂O₃
76 CoMo/SiO₂–Al₂O₃
77 NiW/SiO₂–Al₂O₃
78 CoMo/SiO₂
79 NiMo/SiO₂
80 Mo/Al₂O₃
81 W/Al₂O₃
82 Ni/SiO₂–Al₂O₃
83 Co/Al₂O₃
84 NiMoP/Al₂O₃
85 CoMoP/Al₂O₃
86 NiWP/Al₂O₃
87 MoS₂/Al₂O₃
88 WS₂/Al₂O₃
89 Ni-promoted MoS₂
90 Co-promoted MoS₂
4. Catalytic reforming — naphtha → high-octane gasoline/aromatics/H₂
# Catalyst
91 Pt/Al₂O₃
92 Pt–Re/Al₂O₃
93 Pt–Sn/Al₂O₃
94 Pt–Ir/Al₂O₃
95 Pt–Re–Sn/Al₂O₃
96 Pt–Re–Ge/Al₂O₃
97 Pt–Sn/zeolite
98 Pt/Cl–Al₂O₃
99 Pt–Re/Cl–Al₂O₃
100 Pt–Ir/Cl–Al₂O₃
101 Pt–Re–Ir/Al₂O₃
102 Pt–Sn–K/Al₂O₃
103 Pt–Sn/SiO₂
104 Pt/zeolite
105 Pt/Beta
106 Pt/L-zeolite
107 Pt/K-L zeolite
108 Pt–Re/K-L zeolite
109 Pt–Sn/K-L zeolite
110 Pt–Ge/Al₂O₃
5. Isomerization — straight-chain hydrocarbons → branched high-octane fuel
# Catalyst
111 Pt/Al₂O₃–Cl
112 Pt/zeolite
113 Pt/mordenite
114 Pt/Beta
115 Pt/ZSM-5
116 Pt/SO₄²⁻–ZrO₂
117 Pt/WOₓ–ZrO₂
118 Pt/WO₃–ZrO₂
119 Pt/SO₄²⁻–TiO₂
120 Pt/SiO₂–Al₂O₃
121 Pt/H-mordenite
122 Pt/H-beta
123 Pt/USY
124 Pd/zeolite
125 Ni/zeolite
6. Alkylation — LPG olefins + isobutane → gasoline blending components
# Catalyst
126 H₂SO₄
127 HF
128 USY zeolite
129 Beta zeolite
130 Y zeolite
131 Mordenite
132 HZSM-5
133 SO₄²⁻/ZrO₂
134 WO₃/ZrO₂
135 Nafion-H
136 Supported phosphoric acid
137 H₃PO₄/SiO₂
138 Solid phosphoric acid
139 Tungstated zirconia
140 Sulfated zirconia
7. Fischer–Tropsch — syngas → synthetic diesel/gasoline/wax
Commercial FT technology mainly uses iron- and cobalt-based catalysts; ruthenium and nickel can be catalytically active but are generally not industrial FT choices.
# Catalyst
141 Fe
142 Co
143 Ru
144 Ni
145 Fe/Al₂O₃
146 Fe/SiO₂
147 Fe/TiO₂
148 Fe/ZrO₂
149 Fe/C
150 Co/Al₂O₃
151 Co/SiO₂
152 Co/TiO₂
153 Co/ZrO₂
154 Co/C
155 Ru/Al₂O₃
156 Ru/SiO₂
157 Ru/TiO₂
158 Ru/ZrO₂
159 Ru/C
160 Fe–K/Al₂O₃
161 Fe–K/SiO₂
162 Fe–Cu/Al₂O₃
163 Fe–Cu–K/Al₂O₃
164 Fe–Mn/SiO₂
165 Fe–Mn–K/SiO₂
166 Fe–Co/Al₂O₃
167 Fe–Co/SiO₂
168 Co–Mn/SiO₂
169 Co–Ru/Al₂O₃
170 Co–Re/Al₂O₃
FT research has demonstrated catalysts capable of producing gasoline- and diesel-range hydrocarbons; for example, Ru/Y and Ru/alumina systems have been investigated for transportation fuels.
8. Methanol → gasoline / hydrocarbons
# Catalyst
171 HZSM-5
172 ZSM-5
173 H-beta
174 HY
175 H-Y zeolite
176 SAPO-34
177 SAPO-5
178 SAPO-11
179 Mordenite
180 Ferrierite
181 HZSM-22
182 HZSM-23
183 HZSM-35
184 HZSM-48
185 MCM-22
186 MCM-49
187 MCM-56
188 Al-MCM-41
189 Silicoaluminophosphate
190 Modified HZSM-5
ZSM-5 is particularly important for MTG/MTO chemistry; methanol can be converted into hydrocarbon products including gasoline-range material.
9. Methanol / CO₂ / syngas → methanol → fuel intermediates
# Catalyst
191 Cu/ZnO/Al₂O₃
192 Cu/ZnO
193 Cu/ZnO/ZrO₂
194 Cu/ZnO/Al₂O₃/MgO
195 Cu/ZnO/Al₂O₃/ZrO₂
196 Cu/ZnO/Al₂O₃/Ga₂O₃
197 Cu/ZnO/Al₂O₃/CaO
198 ZnO/Cr₂O₃
199 ZnO/Cr₂O₃/Cu
200 Cu/ZnO/Cr₂O₃
201 Cu/ZnO/ZrO₂/Al₂O₃
202 Pd/Ga₂O₃
203 In₂O₃
204 In₂O₃/ZrO₂
205 ZnZrOₓ
206 Ga₂O₃/ZrO₂
207 Cu/ZnO/ZrO₂/Al₂O₃
208 Cu/ZnO/Al₂O₃ + HZSM-5
209 Cu/ZnO/Al₂O₃ + HY
210 Cu/ZnO/Al₂O₃ + H-beta
10. Methanol → DME / DME → fuels
# Catalyst
211 γ-Al₂O₃
212 HZSM-5
213 H-beta
214 HY
215 H-mordenite
216 SAPO-34
217 Silica-alumina
218 Aluminum phosphate
219 Tungsten oxide
220 Sulfated zirconia
221 WO₃/ZrO₂
222 ZSM-5/Al₂O₃
223 HZSM-5 + Cu/ZnO/Al₂O₃
224 γ-Al₂O₃ + Cu/ZnO/Al₂O₃
225 H-beta + Cu/ZnO/Al₂O₃
The literature identifies γ-alumina and zeolites such as HZSM-5 as important solid-acid catalysts for methanol dehydration to DME.
11. Gasification / biomass → syngas → fuel
# Catalyst
226 Ni/Al₂O₃
227 Ni/MgO
228 Ni/CeO₂
229 Ni/La₂O₃
230 Ni/MgAl₂O₄
231 Ni/CaO
232 Ni/SiO₂
233 Ni/ZrO₂
234 Rh/Al₂O₃
235 Ru/Al₂O₃
236 Fe/Al₂O₃
237 Dolomite
238 Calcined dolomite
239 Olivine
240 CaO
12. Steam reforming / hydrogen production for synthetic fuels
# Catalyst
241 Ni/Al₂O₃
242 Ni/MgAl₂O₄
243 Ni/CeO₂
244 Ni/ZrO₂
245 Ni/MgO
246 Ni/La₂O₃
247 Ni/CeO₂–ZrO₂
248 Rh/Al₂O₃
249 Ru/Al₂O₃
250 Pt/Al₂O₃
13. Water-gas shift — syngas conditioning
# Catalyst
251 Fe₂O₃/Cr₂O₃
252 Fe₂O₃/Cr₂O₃/CuO
253 Cu/ZnO/Al₂O₃
254 Cu/ZnO/Al₂O₃/Cr₂O₃
255 Au/CeO₂
256 Pt/CeO₂
257 Pd/CeO₂
258 Cu/CeO₂
259 Cu/ZrO₂
260 Fe/CeO₂
14. Methanation — syngas → methane/SNG
# Catalyst
261 Ni/Al₂O₃
262 Ni/MgO
263 Ni/SiO₂
264 Ni/CeO₂
265 Ni/ZrO₂
266 Ni/La₂O₃
267 Ru/Al₂O₃
268 Ru/CeO₂
269 Ru/TiO₂
270 Co/Al₂O₃
15. Bio-oil / renewable hydrocarbon upgrading
# Catalyst
271 Ni/Al₂O₃
272 NiMo/Al₂O₃
273 CoMo/Al₂O₃
274 Pt/C
275 Pd/C
276 Ru/C
277 Pt/Al₂O₃
278 Pd/Al₂O₃
279 Ru/Al₂O₃
280 Ni/SiO₂
281 Ni/ZrO₂
282 Pt/zeolite
283 Pd/zeolite
284 Ru/zeolite
285 Ni/zeolite
16. Olefin oligomerization / gasoline and diesel-range hydrocarbons
# Catalyst
286 HZSM-5
287 H-beta
288 H-mordenite
289 HY
290 USY
291 SAPO-11
292 Ni/Al₂O₃
293 Ni/SiO₂–Al₂O₃
294 Ni/H-beta
295 Ni/USY
296 Ni/ZSM-5
297 Amberlyst-15
298 Nafion-H
299 Phosphoric acid/silica
300 Solid phosphoric acid
The most important ones for your petroleum/fuel interest
If your actual goal is “which catalysts can turn petroleum/heavy hydrocarbons into more useful gasoline, diesel, LPG or other fuel products?”, I'd prioritize these:
FCC: USY, REUSY, ZSM-5
Hydrocracking: NiMo/Al₂O₃, NiW/Al₂O₃, NiMo/USY
Hydrotreating: CoMo/Al₂O₃, NiMo/Al₂O₃
Reforming: Pt/Al₂O₃, Pt-Re/Al₂O₃, Pt-Sn/Al₂O₃
Isomerization: Pt/mordenite, Pt/Beta, Pt/Al₂O₃-Cl
FT synthetic fuels: Fe, Co, Fe-K, Co/Al₂O₃
Methanol-to-gasoline: HZSM-5
DME: γ-Al₂O₃, HZSM-5
Syngas-to-methanol: Cu/ZnO/Al₂O₃
A key distinction: FCC/hydrocracking/reforming upgrade existing petroleum feedstocks, whereas Fischer–Tropsch and methanol-to-hydrocarbon routes can synthesize new hydrocarbon fuels from non-petroleum feedstocks such as syngas/methanol.
If by “increase fuel” you mean adding a catalyst/additive directly into petrol or LPG so the same tank contains more fuel, these 300 refinery catalysts are not appropriate for that purpose; they generally require controlled industrial reactors and specific feedstocks.
جامعة الملك سلمان الدولية - King Salman International UniversityWorld Network
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