Detailed Summary of Work Done by the Process Department in the
Oil & Gas Industry
The Process Department is responsible for designing, analyzing, optimizing, and
ensuring the safe and efficient operation of oil and gas production and processing facilities.
It converts production requirements into practical process designs while ensuring
compliance with safety, environmental, and economic objectives.
1. Process Design and Development
Develop process philosophy
Select suitable processing technologies
Define plant operating conditions
Prepare process design basis
Perform process calculations
Determine production capacities
Optimize energy consumption
Evaluate process alternatives
2. Process Simulation
Oil and gas separation
Gas sweetening
Dehydration
Compression
Stabilization
Distillation
Refrigeration systems
LNG processes
Water treatment
Utility systems
3. Material Balance
Feed composition
Product yield
Waste generation
Gas production
Water production
Chemical consumption
Utility requirements
Material Balance Report
Stream Summary
4. Heat Balance
Heating duty
Cooling duty
Steam consumption
Cooling water requirements
Fuel gas consumption
Heat recovery opportunities
5. Process Flow Diagrams (PFD)
Equipment
Stream numbers
Flow rates
Temperatures
Pressures
Utility requirements
Major control loops
6. Piping and Instrumentation Diagrams (P&ID)
Equipment
Valves
Instrumentation
Control loops
Safety devices
Process connections
Utility connections
7. Equipment Sizing
Separators
Heat Exchangers
Columns
Reactors
Knockout Drums
Scrubbers
Filters
Pumps
Compressors
Air Coolers
8. Equipment Datasheets
Design pressure
Design temperature
Capacity
Material requirements
Operating conditions
Mechanical design data
Utility connections
9. Line Sizing
Flow velocity
Pressure loss
Erosion
Noise
Two-phase flow
Pump suction conditions
Line Sizing Report
10. Pressure Drop Calculations
Pipelines
Valves
Heat Exchangers
Filters
Compressors
Flow Meters
11. Hydraulic Analysis
Liquid systems
Gas systems
Two-phase systems
Pump networks
Pipeline systems
12. Relief System Design
Identify overpressure scenarios
Calculate relief loads
Size safety valves
Size rupture discs
Design flare headers
Design flare knock-out drums
Design flare stacks
13. Flare System Design
Relief load calculations
Flare network hydraulics
Radiation analysis
Backpressure analysis
Flare tip selection
14. Utility System Design
Steam
Cooling water
Hot oil
Nitrogen
Instrument air
Plant air
Fuel gas
Potable water
Fire water
Demineralized water
15. Chemical Injection Design
Corrosion inhibitors
Scale inhibitors
Demulsifiers
Methanol
MEG
TEG
Oxygen scavengers
Biocides
16. Process Safety Studies
HAZID
HAZOP
SIL
LOPA
Bow-Tie Analysis
Risk Assessment
Explosion studies
Fire studies
17. Cause and Effect Matrix
High pressure shutdown
High temperature shutdown
Gas leak response
Fire detection
Emergency shutdown (ESD)
18. Control Philosophy
Plant operating sequence
Startup
Shutdown
Emergency shutdown
Interlocks
Alarms
Operator actions
19. Operating Philosophy
Normal operation
Startup
Shutdown
Turndown operation
Maintenance mode
Emergency operation
20. Environmental Compliance
Minimizing flaring
Reducing emissions
Improving energy efficiency
Managing produced water
Reducing waste
Supporting carbon reduction initiatives
21. Energy Optimization
Heat integration
Heat exchanger network optimization
Waste heat recovery
Steam optimization
Compressor optimization
Pump optimization
22. Debottlenecking
Removing process restrictions
Improving hydraulics
Modifying equipment
Optimizing operating conditions
23. Process Troubleshooting
Low production
High pressure drop
Foaming
Flooding
Poor separation
Excessive vibration
High temperatures
High energy consumption
Off-spec products
24. Plant Commissioning Support
Review construction completion
Verify equipment
Support leak testing
Assist with flushing and cleaning
Support startup
Monitor plant performance
Optimize operating conditions
25. Performance Monitoring
Production rate
Recovery efficiency
Energy consumption
Chemical consumption
Equipment efficiency
Product quality
Plant availability
Flare losses
26. Brownfield Modification Projects
Process evaluation
Capacity assessment
Equipment checks
Process simulations
Revamping existing facilities
Supporting Management of Change (MOC)
27. Major Deliverables
Process Design Basis (PDB)
Process Design Criteria (PDC)
Process Description
Process Philosophy
PFDs
P&IDs
Utility Flow Diagrams (UFDs)
Material Balance
Heat Balance
Stream Summary
Equipment Datasheets
Line List
Valve List
Utility Summary
Relief Valve Datasheets
Flare Report
Hydraulic Calculations
Process Simulation Files
Cause & Effect Matrix
Operating Manuals
Startup and Shutdown Procedures
Design Calculation Reports
28. Coordination with Other Engineering Disciplines
Mechanical Engineering
Piping Engineering
Instrumentation & Control
Electrical Engineering
Civil & Structural Engineering
Safety Engineering
Project Engineering
Operations & Maintenance
Typical Process Workflow
Collect feed and operating data.
Develop the process design basis.
Perform material and heat balance calculations.
Build and validate process simulation models.
Prepare PFDs and stream summaries.
Size process equipment and pipelines.
Develop P&IDs and process control philosophy.
Design relief, flare, and utility systems.
Participate in HAZOP and other safety reviews.
Issue equipment datasheets for procurement.
Support detailed engineering, commissioning, startup, and performance optimization.