Para-Xylene Recovery Unit: How Refineries Separate High-Purity Para-Xylene
How integrated refinery and petrochemical plants recover high-purity para-xylene from mixed C8 aromatics using specialized separation.
Course overview →Explore lessons for the skilled trades.
How integrated refinery and petrochemical plants recover high-purity para-xylene from mixed C8 aromatics using specialized separation.
Course overview →How an aromatics extraction system separates benzene, toluene, and xylenes from catalytic reformer product streams.
Course overview →How residue hydrocracking uses hydrogen, pressure, and catalysts to convert heavy refinery residue into lighter products.
Course overview →Learn how a visbreaker reduces heavy residue viscosity through controlled thermal cracking and recovers lighter fractions.
Course overview →A guide to refinery fractionation of mixed light hydrocarbons into useful C1, C2, C3, C4, and C5-plus streams.
Course overview →How refineries recover, treat, and condition butylene-rich C4 material from FCC gas for downstream alkylation.
Course overview →Why separating propylene from propane requires specialized fractionation and where the splitter fits in FCC gas recovery.
Course overview →How an FCC wet gas plant compresses and separates cracked vapors into fuel gas, LPG components, and stabilized gasoline.
Course overview →How a saturated gas plant treats refinery gases and recovers propane, butane, and heavier hydrocarbons.
Course overview →Learn how Merox treating uses caustic solution, catalyst, and oxygen to treat mercaptans in LPG, kerosene, and other refinery streams.
Course overview →How refineries recover and separate light hydrocarbon gases into fuel gas, C3 and C4 products, and C5-plus material.
Course overview →How a refinery hydrogen plant uses steam methane reforming and purification to supply hydrotreaters and hydrocrackers.
Course overview →How tail gas treating recovers additional sulfur compounds after the Claus sulfur recovery unit and returns hydrogen sulfide for processing.
Course overview →How a sour water stripper removes hydrogen sulfide and ammonia from refinery process water before downstream handling.
Course overview →How a refinery sulfur recovery unit converts hydrogen sulfide-rich acid gas into elemental sulfur through the Claus process.
Course overview →How circulating amine absorbs hydrogen sulfide from sour refinery gas and sends acid gas to sulfur recovery.
Course overview →How diesel-range feed combines with hydrogen and catalyst, then passes through separation and stripping to produce treated distillate.
Course overview →How a delayed coker thermally cracks vacuum residue into lighter hydrocarbons and solid petroleum coke.
Course overview →How a hydrocracker uses hydrogen, pressure, temperature, and catalyst to make lighter diesel, jet-range, and naphtha streams.
Course overview →How the FCC cracks vacuum gas oil with circulating catalyst to produce gasoline-range material, LPG, and other light products.
Course overview →How a refinery combines isobutane with light olefins in an alkylation unit to make high-octane gasoline blendstock.
Course overview →How an isomerization unit rearranges light naphtha molecules into higher-octane isomerate for gasoline blending.
Course overview →How a catalytic reformer turns hydrotreated naphtha into high-octane reformate and hydrogen-rich gas using heated catalyst reactors.
Course overview →How a naphtha hydrotreater uses hydrogen and catalyst to remove sulfur and other contaminants before downstream gasoline processing.
Course overview →How a vacuum distillation unit separates atmospheric residue into vacuum gas oils and heavier residue at reduced pressure.
Course overview →How a crude distillation unit heats and separates crude oil into refinery streams by boiling range, from light gases to atmospheric residue.
Course overview →The final course lesson reviews crane hand signals, operator actions, load movement, communication failures, and a field assessment. Course completion alone is not qualification.
Course overview →Part 4 covers blind picks, radio communication, signal transfers, lost contact, stop signals, and planning around obstructed views.
Course overview →Part 3 explains signals for raising, lowering, extending, and retracting a crane boom, plus combined boom/load and travel commands.
Course overview →Part 2 explains seven essential crane hand signals: hoist, lower, stop, emergency stop, swing, move slowly, and dog everything.
Course overview →Part 1 introduces the signal person's role, visibility, communication, load awareness, hazard control, and when signaling is required.
Course overview →Finish the pipefitter course with system installation checks, testing, inspection, reinstatement, turnover, and troubleshooting.
Course overview →Learn how hangers, anchors, guides, and springs support industrial piping while managing weight and thermal movement.
Course overview →Learn flange alignment, gasket selection, bolt-up basics, and final piping connections in Part 8 of the pipefitter course.
Course overview →Learn simple and rolling offsets, 45-degree calculations, and right-triangle geometry for industrial pipe layout.
Course overview →Learn spool fabrication, joint preparation, fit-up, bevels, root gaps, tack-up, and flange orientation before welding.
Course overview →Learn to read piping isometrics, plans, P&IDs, dimensions, elevations, and symbols in Part 5 of the pipefitter course.
Course overview →Learn how pipefitters use tapes, levels, squares, and control references to transfer dimensions into accurate field layout.
Course overview →Learn practical pipefitter math for fractions, fitting takeoffs, right triangles, offset travel, and centerline measurements.
Course overview →Learn how elbows, tees, reducers, flanges, and valves build industrial piping systems and affect layout and takeoff.
Course overview →Start industrial pipefitting with NPS, OD, ID, wall thickness, schedule, materials, centerlines, and basic measurements.
Course overview →