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How Does Crude Oil Get Separated into Different Products?

  How Does Crude Oil Get Separated into Different Products? Crude oil is not a single substance. It is a complex mixture of hydrocarbons containing molecules of different sizes, structures, and boiling points, along with water, salts, sulfur compounds, and other impurities. A refinery converts this complex mixture into useful products such as refinery gases, LPG, naphtha, gasoline components, kerosene/jet fuel, diesel, gas oil, lubricating oil feedstocks, and heavy fuel or bitumen-related streams. The first major step is fractional distillation , where the different hydrocarbon fractions are separated primarily according to their boiling ranges. 🔥 1. Crude Oil Preparation Before entering the main distillation unit, crude oil normally passes through a desalter . The desalter removes water-soluble salts, suspended solids, and other contaminants that can cause corrosion, fouling, and operational problems in downstream equipment. The treated crude is then preheated through a series of...
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Multimedia Filter in Water Treatment Working Principle, Components & Operation

  Multimedia Filter in Water Treatment Working Principle, Components & Operation A Multimedia Filter (MMF) is an important pretreatment unit in a water-treatment system, particularly when the treated water is going to an RO (Reverse Osmosis) system. Its primary function is to remove suspended solids, dirt, sand, rust, silt, and other particulate matter from raw water before it reaches downstream equipment. The main objective is to reduce the turbidity and particulate loading on cartridge filters and RO membranes, helping improve RO performance and membrane life. 1. Main Purpose of a Multimedia Filter A multimedia filter is designed to remove physical impurities such as: Suspended solids Sand and silt Dirt and mud particles Rust particles Organic particulate matter Other relatively large insoluble particles The MMF does not normally remove dissolved salts, hardness, or dissolved minerals. These require other treatment processes such as softening, chemical treatment, or RO. The b...

Pressure Reduction Assembly Components, Working Principle & Engineering Guide

  Pressure Reduction Assembly Components, Working Principle & Engineering Guide A pressure reduction assembly is a piping arrangement designed to reduce a higher upstream fluid pressure to a controlled and stable downstream pressure. It also protects downstream piping, valves, instruments, and equipment against excessive pressure. These assemblies are commonly used in water supply, HVAC, plumbing, compressed air, steam, industrial utilities, fire protection, and process systems, although the exact arrangement and valve type depend on the service. Typical flow arrangement High-pressure supply  Inlet isolation valve  Inlet pressure gauge  Y-strainer  Pressure-reducing valve  Outlet pressure gauge Relief/safety protection Outlet isolation valve Low-pressure system Important: The exact location and connection of the relief valve depend on the applicable code and system design. It normally protects the low-pressure side against credible overpressure scenari...

Data Center Cooling System Chilled Water & CRAH Units

  Data Center Cooling System Chilled Water & CRAH Units Cooling is one of the critical systems keeping a data center alive. Servers, storage systems, networking equipment and other IT infrastructure continuously consume electrical power and convert most of it into heat . If this heat is not removed effectively, equipment temperatures can rise rapidly, resulting in thermal throttling, alarms, equipment shutdown, reduced component life and potentially loss of critical IT services. A typical chilled-water data center cooling system with CRAH (Computer Room Air Handler) units continuously transfers heat through the following path: IT Equipment  Hot Aisle  CRAH Unit  Chilled Water  Chiller  Condenser System   Cooling Tower / Outdoor Environment The system is therefore not simply producing cold air. Its real purpose is to capture, transport and reject heat continuously and reliably. 1. Heat Generation Inside the Data Hall Servers draw electrical pow...

HTM 02-01:2026 Clause 1.31 Designers Must Demonstrate Competence in MGPS Design

 HTM 02-01:2026 Clause 1.31 Designers Must Demonstrate Competence in MGPS Design HTM 02-01, Medical Gas Pipeline Systems (MGPS) was published on 19 August 2026. Part A covers the design, installation, validation and verification of medical gas pipeline systems.  One particularly important point for consulting engineers, MEP engineers and MGPS specialists is Clause 1.31, which explicitly includes the training and competency of designers and contractors, alongside Authorized Persons (MGPS) and Authorizing Engineers (MGPS).  What does Clause 1.31 mean? The practical message is straightforward: Being an experienced mechanical or MEP engineer alone is not sufficient evidence that someone is competent to design an MGPS. Medical gas systems are safety-critical healthcare infrastructure. The designer needs appropriate skills, knowledge, experience and behaviors for the work they undertake not simply the ability to follow a drawing, spreadsheet, specification or calculation proced...

Cooling Tower Working Complete HVAC Heat Rejection Guide

  Cooling Tower Working Complete HVAC Heat Rejection Guide A cooling tower is a heat-rejection device used mainly in water-cooled HVAC systems and industrial processes. Its purpose is to remove the heat absorbed by the condenser-water system and reject it to the outdoor atmosphere. In a typical water-cooled chiller plant, the heat flow is: Building Heat Chilled Water  Chiller Refrigerant  Condenser Water  Cooling Tower   Atmosphere 1. Why is a cooling tower required? Inside a water-cooled chiller, the evaporator removes heat from the building's chilled-water circuit. The refrigerant carries this heat to the condenser . The condenser transfers heat from the refrigerant into the condenser water . This warm condenser water then flows to the cooling tower, where its heat is rejected to the atmosphere. Importantly, the cooling tower rejects: Heat rejected = Building cooling load + Chiller compressor heat Therefore, cooling-tower heat rejection is normally greate...