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Crude Oil Sampling Properties, Measurement & Best Practices: A Complete Industry Guide

Crude oil is one of the world's most commercially significant commodities — and accurate representative sampling is the foundation of every fair transaction. This guide covers crude classifications, API gravity, sampling methodology, contaminant management, and the standards that govern every custody transfer point in the crude oil supply chain.

API MPMS Ch. 8 API Gravity Classification Mixing & Homogenization BS&W Measurement Custody Transfer Pipeline & Marine
Why Crude Oil Sampling Matters

Billions of Dollars Settled Daily on Sample Accuracy

Crude oil is traded in enormous volumes at wellheads, pipeline interconnects, storage terminals, marine loading points, and refineries. The price paid at every one of these custody transfer points is determined by two things: volume and quality. Volume is measured by meters and tank gauges. Quality — gravity, sulfur content, BS&W, viscosity — is determined by the sample.

A non-representative sample can misstate crude quality by enough to shift payment by thousands of dollars per shipment. At scale, across pipelines moving hundreds of thousands of barrels per day, measurement errors compound rapidly. The stakes demand equipment designed for the crude being sampled, processes that follow API standards, and a deep understanding of why crude oil sampling is uniquely challenging.

Price Is Set by Quality — Not Volume Alone API gravity, sulfur content, and BS&W directly affect the price paid per barrel. A 1° API difference on a 100,000-barrel parcel can represent a material pricing adjustment.
Crude Oil Must Be Mixed Before Sampling Unlike natural gas, crude oil is heterogeneous — water, sediment, wax, and free gas distribute unevenly in the stream. Adequate mixing or in-line homogenization is prerequisite to a representative sample.
Viscosity Changes Everything Heavy and very heavy crude oils have viscosities that make pumping, mixing, and extracting a representative sample enormously challenging. Equipment must be selected to match crude viscosity at operating temperature.
BS&W Is a Deduction — Not an Estimate Basic sediment and water (BS&W) is subtracted from the gross volume at settlement. A 0.5% BS&W error on a 100,000-barrel tanker represents 500 barrels of lost or overbilled value.
API and ASTM Standards Are Contractually Binding Crude oil purchase and sale agreements reference API MPMS and ASTM standards by name. Non-compliant sampling methods can invalidate results and trigger commercial disputes.
Crude oil pipeline custody transfer sampling station Crude Oil · Custody Transfer Sampling
Governing Standards API MPMS Ch. 8.1 & 8.2 API MPMS Ch. 10 (BS&W) ASTM D4177 ASTM D5854 ISO 3171 API RP 45 GPA 8182
Supply Chain Overview

How Crude Oil Moves — From Wellhead to Refinery

→ → → → → → → → 01 Production Wellhead GAS 02 Gathering & Separation 03 Pipeline Pump Station 04 Storage Terminal 05 Refinery Delivery = Custody Transfer Point
STAGE 01

Production & Wellhead

Raw crude emerges with produced water, gas, and solids. Wellhead sampling establishes baseline quality and informs separation and treating requirements. API gravity and BS&W are measured here.

STAGE 02

Gathering & Separation

Three-phase separators remove produced gas, water, and solids. Treated crude is tested for water content, API gravity, and RVP before entering the gathering pipeline for downstream transport.

STAGE 03

Pipeline & Pump Station

Crude enters the long-haul pipeline system. Custody transfer metering and sampling occurs at interconnects between pipelines, carriers, and producers — with inline mixers ensuring representative samples.

STAGE 04

Storage Terminal

Crude is received into storage tanks. Tank gauging, temperature measurement, and BS&W testing determine the volume and quality received. Mixing before measurement is essential for representative data.

STAGE 05

Refinery Delivery

Crude is delivered to the refinery gate — by pipeline, tanker, or barge — where final quality measurement determines the basis for settlement and informs the refinery's crude diet and processing plan.

Classification

API Gravity: How Crude Oil Is Classified

API gravity is the primary classification system for crude oil worldwide. Developed by the American Petroleum Institute, it measures how heavy or light crude oil is relative to water. The higher the API gravity, the lighter the crude — and generally, the more valuable it is, as lighter crudes yield more high-value refined products per barrel. Crude oils range from ultra-light condensates above 45° API to near-solid bitumens below 10° API, each presenting distinct sampling, transport, and processing challenges.

Very Light >45° API
Light 31.1–45° API
Medium 22.3–31.1° API
Heavy 10–22.3° API
Very Heavy <10° API
Specialty Various
← Lighter / More Valuable Heavier / More Challenging →

Very Light · >45° API

Very Light & Condensate

Water-white to pale yellow. Flows easily at ambient temperature. High vapor pressure requires sealed sampling systems. May contain dissolved gas that flashes on pressure drop — requires careful sample handling.

Light · 31.1–45° API

Light Crude Oil

The most commercially traded crude grade. Low viscosity, good flow characteristics. Pump-and-mix sampling is straightforward. Low BS&W in well-treated streams. Premium priced at most markets.

Medium · 22.3–31.1° API

Medium Crude Oil

The most common global production category. Moderate viscosity — begins to challenge standard sampling equipment below 25° API at cooler temperatures. Higher wax content than light crude.

Heavy · 10–22.3° API

Heavy Crude Oil

High viscosity at ambient conditions. Often requires heating to achieve adequate flow for mixing and sampling. High BS&W and sulfur content are common. Specialized extractor designs required for representative samples.

Very Heavy · <10° API

Very Heavy & Bitumen

Near-solid or paste-like at ambient temperature. Requires significant heat and diluent addition (dilbit) for pipeline transport. Sampling requires heated, high-torque equipment. Dilution ratio must be known for quality measurement.

Specialty · Various API

Specialty Crudes

Includes waxy crudes, high-acid crudes (TAN >1.0), highly emulsified streams, and blended crude grades. Each presents unique sampling challenges requiring specific equipment selection and procedural adaptations.

Crude Types & Sampling Challenges

Crude Oil Types & Their Measurement Challenges

Each crude classification brings a distinct set of physical properties that directly affect how a representative sample can be collected, and what equipment is needed to do it correctly.

Very Light & Light Crude Oil

>31.1° API · Low viscosity · High vapor pressure

Light crudes are the most commercially prized — they flow easily, yield high proportions of gasoline and diesel, and are relatively straightforward to sample. However, their high vapor pressure introduces a different challenge: dissolved gas that flashes to vapor when pressure drops below the bubble point.

Sampling Challenges

  • High RVP — sealed, pressure-balanced sample containers required
  • Dissolved gas flash causes sample to lose light-end components
  • Condensates may require gas-phase sampling considerations
  • API MPMS Ch. 8.1 provisions for high-vapor-pressure streams apply
Learn More

Medium Crude Oil

22.3–31.1° API · Moderate viscosity

Medium crude is the workhorse of global production — the most widely traded grade and the benchmark for many regional pricing indices. Sampling is generally more tractable than heavy crudes, but wax content and moderate viscosity at cool temperatures begin to demand attention to mixing thoroughness and extractor design.

Sampling Challenges

  • Wax deposition in cold climates can plug sample lines
  • Adequate mixing critical — viscosity begins to impede stratification correction
  • BS&W content varies — centrifuge and Karl Fischer testing both applicable
  • Sulfur content requires compatible extractor materials
Learn More

Heavy Crude Oil

10–22.3° API · High viscosity · High BS&W

Heavy crude presents significant sampling challenges. Its high viscosity at ambient temperatures limits flow through standard extractor designs, while elevated water and sediment content makes achieving a representative sample of the entire stream — including the water phase — technically demanding. Heating is often required.

Sampling Challenges

  • High viscosity may require heated sample lines and containers
  • High BS&W demands robust mixing before sampling
  • Emulsions resist natural separation — centrifuge testing required
  • Specialized extractors with higher flow capacity required
Learn More

Very Heavy & Extra Heavy Crude

<10° API · Near-solid · Requires diluent

Very heavy crudes — including oil sands bitumen — are too viscous to pipeline without dilution. They are typically transported as dilbit (bitumen + diluent) or synbit. The presence of diluent, combined with extreme viscosity and high BS&W, creates some of the most challenging sampling conditions in the industry.

Sampling Challenges

  • Diluent ratio must be known and consistent for quality calculation
  • Extreme viscosity demands heated, high-torque sampling equipment
  • Sand and fine solids impede extractor operation
  • BS&W measurement is complex with emulsified heavy oil
Learn More

Specialty Crudes

Waxy · High-TAN · Emulsified · Blended

Specialty crude designations cover streams with unusual characteristics that require non-standard approaches: waxy crudes with pour points above ambient temperature, high-acid crudes (TAN >1.0 mg KOH/g) that aggressively corrode standard equipment, and highly stable emulsions that resist conventional BS&W testing methods.

Sampling Challenges

  • Waxy crudes congeal in sample lines — heated systems throughout
  • High-TAN crudes require acid-resistant materials of construction
  • Stable emulsions require chemical demulsification before BS&W testing
  • Blended crudes may re-stratify — sample immediately after mixing
Learn More
Measurement Science

What Makes a Representative Crude Oil Sample?

A representative crude oil sample is one that accurately reflects the composition and quality of the entire batch or flowing stream — including its water, sediment, and free-gas content — without alteration from the point of collection to the point of analysis. Achieving this with crude oil is fundamentally more difficult than with natural gas because crude oil is a heterogeneous liquid.

Water and sediment settle. Wax migrates. Gas breaks out. Heavy components stratify. An extractor drawing from the same point in the pipe continuously will not capture these variations unless the stream is adequately mixed — and even then, the sample system itself must not alter the sample before it reaches the container.

API MPMS Chapter 8.1 (Manual Sampling) and Chapter 8.2 (Automatic Sampling) define the methodology. Both standards address mixer performance, extractor placement, sample system design, container selection, and the critical role of mixing in achieving a representative sample.

Mixing is Prerequisite — Not Optional

API MPMS Ch. 8.2 requires proof that the stream is adequately mixed before automatic sampling is considered valid. Static or plug-flow conditions produce stratification that cannot be corrected by more sophisticated sampling equipment.

Extractor Placement in the Turbulent Zone

The sample extractor must be positioned in the zone of best mixing — typically 5–10 pipe diameters downstream of a pump or mixing element. Placement near walls or in laminar-flow zones produces biased samples regardless of extractor quality.

Proportional-to-Flow Extraction

For pipeline crude, the extractor should actuate proportional to flow — collecting more sample grabs when flow is high and fewer when flow is low — producing a flow-weighted composite that represents the total volume of crude that changed hands.

Container Selection Matters

Sample containers must be clean, appropriately sized, compatible with the crude being sampled, and sealed to prevent evaporation or contamination. For light or volatile crude, pressure-rated containers prevent flash loss of light-end components during transport.

Temperature Management for Heavy Crudes

For heavy and waxy crudes, temperature must be maintained above the pour point throughout the sample system — from extractor through sample lines to container. A sample that congeals in transit is not representative and cannot be relitigated after the fact.

Process Overview

Crude Oil Sampling Process — Six Critical Stages

→ → → → → → → → BBL/DAY 01 Flow Measurement 02 Inline Mixing 03 Sample Extraction 04 Sample Collection MIXING OK 05 Sample Homogenization API° BS&W% 06 Lab Analysis
STEP 01

Flow Measurement

Turbine or Coriolis meters measure volumetric or mass flow rate. For proportional sampling, the extractor actuates based on this signal — ensuring more grabs at higher flow rates.

STEP 02

Inline Mixing

Static or dynamic mixers homogenize the stream before the extractor. API 8.2 requires demonstrated mixing adequacy — the mixing quality factor (MQF) must be verified before sampling begins.

STEP 03

Sample Extraction

The extractor draws a small, proportional-to-flow grab from the pipeline into the sample system. Extractor design must match crude viscosity, pressure, and BS&W content.

STEP 04

Sample Collection

Grabs accumulate in a sealed sample container over the measurement period. The container must maintain temperature above pour point for heavy crudes and prevent evaporation for light crudes.

STEP 05

Homogenization

Before drawing a sub-sample for lab analysis, the collected crude sample must be thoroughly mixed to ensure the sub-sample represents the composite. Automated mixers in the sample panel are standard practice.

STEP 06

Lab Analysis

API gravity (ASTM D287), BS&W (centrifuge or Karl Fischer), sulfur, viscosity, pour point, TAN, and RVP testing are performed. Results form the basis for quality adjustment to the custody transfer price.

Quality & Contaminants

Crude Oil Quality Parameters & Contaminant Management

Crude oil quality is defined by a suite of physical and chemical parameters, each of which affects its commercial value and refinery suitability. Understanding these parameters — and how they affect sampling — is essential for anyone involved in crude oil measurement and custody transfer.

Most crude purchase contracts specify maximum acceptable levels for BS&W, sulfur, salt, water, and Reid Vapor Pressure (RVP). Failure to meet specifications can result in cargo rejection, price adjustments, or equipment damage at the receiving facility.

BS&W (Basic Sediment & Water)

The most commercially significant quality parameter. BS&W is deducted from gross volume at settlement — 1% BS&W on a 100,000-barrel cargo is 1,000 barrels of pipeline-quality oil unaccounted for.

Hydrogen Sulfide (H₂S)

Present in sour crude. Toxic, corrosive, and a significant safety hazard during sampling operations. Sour crude requires appropriate PPE, sealed sample handling, and H₂S-compatible materials throughout.

Salt Content (PTB)

Salt in crude oil accelerates corrosion of refinery equipment — particularly desalter units. Typical pipeline limits are <57 PTB (pounds per thousand barrels). Desalting at the production facility is standard practice.

Reid Vapor Pressure (RVP)

High RVP crude contains dissolved light hydrocarbons that flash to gas at atmospheric pressure. Affects storage tank losses, vapor recovery requirements, and light-end sampling integrity for light and condensate crudes.

Total Acid Number (TAN)

Measures organic acid content in crude. High-TAN crude (naphthenic acid crude) aggressively corrodes steel at refinery temperatures. Affects equipment material selection for both sampling and processing equipment.

Wax Content & Pour Point

Waxy crudes solidify below their pour point — blocking pipelines, sample lines, and containers. Pour point depressants, pipeline heating, and fully heated sample systems are required in cold-climate and waxy crude operations.

Mixing Requirements

Why Mixing Is the Critical First Step

Unlike natural gas, which is an essentially homogeneous fluid, crude oil is a complex mixture of hydrocarbons with dissolved water, sediment, gas, wax, and other contaminants that stratify — separate into layers — in any static or slow-moving condition. A sample drawn from an inadequately mixed stream will reflect conditions at the extractor location, not the composition of the full stream.

API MPMS Chapter 8.2 requires operators to verify mixing quality before relying on automatic sampler results. The standard defines a Mixing Quality Factor (MQF) calculated from BS&W measurements at multiple points in the pipe cross-section — the MQF must be ≤ a defined limit before the sample is considered representative.

Static Mixers vs. Dynamic Mixers

Static mixers use pipeline turbulence and fixed elements to homogenize the stream without moving parts — reliable, low-maintenance, and effective when flow rates are sufficient to generate adequate turbulence. Dynamic (powered) mixers actively agitate the stream and are required when flow rates are too low for static mixing to be effective, or when crude viscosity is too high for turbulence alone to achieve homogenization. Both types must be verified by mixing quality testing before automatic sampling is used for custody transfer.

Manual Sampling at Tanks and Marine Terminals

When crude is received into storage tanks or loaded onto tankers, pipeline automatic sampling may not be available. API MPMS Chapter 8.1 defines manual sampling procedures for tanks, ship manifolds, and shore tanks — including multi-level zone sampling, thief sampling, and running sample methods. Manual sampling results are only as good as the procedure followed and the mixing state of the cargo being sampled.

Standards & Compliance

Governing Standards for Crude Oil Sampling

Crude oil measurement is governed by a well-established body of API, ASTM, and ISO standards. These standards define acceptable sampling methods, equipment specifications, mixing requirements, and laboratory analysis procedures. Compliance is typically a contractual obligation in crude purchase and sale agreements.

API MPMS Chapter 8.1

Manual Sampling of Petroleum and Petroleum Products

Covers manual sampling procedures for tanks, pipelines, tank trucks, marine vessels, and other static and flowing crude applications. Defines sampling location, equipment requirements, and container handling.

API MPMS Chapter 8.2 / ASTM D4177

Automatic Sampling of Petroleum and Petroleum Products

The primary standard for automatic (inline) crude oil sampling systems. Defines mixing quality requirements, extractor performance specifications, proportional-to-flow sampling, and system verification procedures.

API MPMS Chapter 10

Sediment and Water — BS&W Measurement

Defines laboratory procedures for measuring basic sediment and water content by centrifuge (10.3) and Karl Fischer titration. BS&W measurement directly determines the deduction applied to gross volume at settlement.

ASTM D5854

Mixing and Handling of Liquid Samples

Covers procedures for mixing, handling, and sub-sampling petroleum liquids in the laboratory and field to ensure that laboratory results represent the original sample without bias from improper handling.

ISO 3171

Automatic Pipeline Sampling

International standard for automatic petroleum liquid sampling — widely referenced outside North America alongside or in place of API MPMS Chapter 8.2 in international crude purchase agreements.

Industry Glossary

Key Terms for New Professionals

Crude oil measurement involves terminology that is specific to the petroleum industry. These definitions provide a foundation for understanding sampling, quality, and measurement discussions at custody transfer points.

Essential Definitions

API Gravity

A measure of how heavy or light crude oil is relative to water. API gravity = (141.5 / specific gravity) – 131.5. Water = 10° API. Higher numbers indicate lighter, more valuable crude.

BS&W (Basic Sediment & Water)

The combined percentage of water, sediment, and other non-hydrocarbon material in crude oil. BS&W is deducted from the gross volume to arrive at the net volume of pipeline-quality oil at settlement.

Mixing Quality Factor (MQF)

A calculated measure of mixing homogeneity defined in API MPMS 8.2. The MQF must meet the standard's threshold before automatic sampling results can be used for custody transfer.

Pour Point

The lowest temperature at which crude oil will flow. Below the pour point, waxy crudes solidify — blocking pipelines, sample lines, and containers. Critical for equipment selection in cold climates and waxy crude production.

PTB (Pounds per Thousand Barrels)

The unit of measurement for salt content in crude oil. Pipeline and refinery inlet specifications typically limit salt to <57 PTB; premium crude may be specified at <10 PTB.

RVP (Reid Vapor Pressure)

A measure of crude oil's vapor pressure at 100°F. High-RVP crude releases light hydrocarbons as vapor during storage and sampling — sample containers must be sealed and pressure-rated for high-RVP streams.

TAN (Total Acid Number)

Measures organic acid concentration in crude oil, expressed in mg KOH/g. TAN >1.0 indicates "high-acid" crude that aggressively corrodes refinery equipment and requires acid-resistant materials in sampling systems.

Frequently Asked Questions

Crude Oil Sampling: Common Questions

Questions our application engineers encounter most often from operators, engineers, and measurement professionals new to crude oil custody transfer sampling.

Natural gas is a compressible, essentially homogeneous fluid — at pipeline conditions, it mixes readily and composition is uniform throughout the cross-section. Crude oil is a complex, heterogeneous liquid mixture. Water and sediment are denser than oil and settle toward the bottom of the pipe under low-flow or static conditions. Wax separates as temperature drops. Gas breaks out at low-pressure points. Without adequate mixing, a sample extractor drawing from any fixed location in the pipe will collect fluid that overrepresents whatever has accumulated at that location — producing a sample that does not reflect the true composition of the entire stream. Mixing homogenizes the stream so the extractor can collect a representative sample regardless of where in the cross-section it draws from.
The Mixing Quality Factor (MQF) is a measure defined in API MPMS Chapter 8.2 that quantifies how well the crude oil stream is mixed at the point of sampling. It is calculated by simultaneously collecting samples from multiple points across the pipe cross-section — typically the centerline and positions closer to the pipe wall — and comparing the BS&W content of each. A perfectly mixed stream would have identical BS&W at every point; the MQF measures the deviation from this ideal. The standard requires the MQF to be ≤ 3 times the BS&W measurement uncertainty before automatic sampling results are considered representative enough for custody transfer use. If the MQF exceeds the threshold, additional mixing is required before sampling can proceed.
Static mixers are passive devices — they use fixed internal elements to redirect and cross-mix fluid as it flows through them, powered entirely by pipeline pressure. They are reliable, low-maintenance, and effective across a wide range of flow rates and crude types when flow velocity is sufficient to generate turbulence. They are typically the preferred first choice. Dynamic mixers (motorized or pneumatically powered) actively agitate the fluid and are required when: (1) pipeline flow rates are too low to generate adequate turbulence through a static mixer; (2) crude viscosity is too high for static mixing to achieve homogenization at operating flow rates; or (3) BS&W content is very high and water-in-oil emulsions are difficult to break down by passive mixing alone. The required approach is validated by MQF testing in either case.
Standard extractor designs for light and medium crude rely on the differential pressure between the pipeline and a lower-pressure sample receiver to drive fluid through the extractor probe. For heavy and viscous crude, this passive differential pressure may be insufficient to pull an adequate sample volume through the extractor — especially at lower flow velocities or in cold weather when viscosity increases further. Heavy crude applications typically require positive-displacement extractors that actively pump a defined volume of crude with each actuation, regardless of pipeline-to-sample differential pressure. These extractors must also be designed with appropriately large internal passages to avoid plugging, and may require heated sample lines to maintain flowability between the extractor and the sample container.
API MPMS Chapter 8.2 requires automatic samplers to be verified at the start of each sampling period and at regular intervals during operation. This includes confirming that the extractor is actuating on the correct signal, that grab volumes are within specification, that sample lines are clear and unobstructed, and that the sample container is properly sealed and at the correct temperature. Full calibration of extractor grab volume should be performed after any maintenance that could affect sample volume — such as seal replacement or extractor tip cleaning — and at minimum on a periodic schedule defined in the facility's measurement procedures. For high-volume custody transfer points, many operators perform daily verification and full calibration monthly. Good record-keeping of all maintenance and calibration activities is required for regulatory and contractual compliance.
Yes — ASTM D5854 defines the procedures for mixing and handling petroleum liquid samples in the laboratory, including how to re-homogenize samples that have stratified during transport. For most crude oil types, carefully controlled mechanical mixing of the sealed sample container before sub-sampling is both acceptable and required. However, there are important limits: for light crude and condensate samples, re-mixing must be done carefully to avoid releasing dissolved gas (which permanently alters the sample composition). For heavy crude samples that have been transported below their pour point and have congealed, careful heating to a specified temperature above pour point is required before mixing. The key principle in ASTM D5854 is that the sub-sample drawn for laboratory analysis must represent the entire accumulated sample — which requires proper mixing before any aliquot is withdrawn.
Welker Solutions for Crude Oil

Crude Oil Sampling Equipment from Welker

Since 1954, Welker has designed, manufactured, and tested crude oil sampling equipment in Sugar Land, Texas. Our crude oil product line covers extractors, containers, mixers, and control panels — each engineered to API MPMS Chapter 8 requirements and built to perform reliably in demanding field conditions across the full range of crude types, from light condensate to heavy bitumen dilbit.

70+ Years engineering crude oil sampling equipment
90+ U.S. patents held by Welker across product lines
ISO 9001:2015 certified manufacturing — Sugar Land, TX
API MPMS Ch. 8.1 & 8.2 compliant sampling systems
Extraction

Crude Oil Extractors

Fast Loop · Probe-Type · Positive Displacement

Welker manufactures crude oil extractors for the full range of crude types and operating conditions — from passive differential-pressure designs for light and medium crude to positive-displacement designs for heavy and viscous streams.

  • Multiple extractor designs for light through heavy crude
  • Positive-displacement extractors for high-viscosity applications
  • Heated extractor configurations for waxy and cold-climate crude
  • Compatible with API 8.2 proportional-to-flow control systems
  • Corrosion-resistant alloys available for sour and high-TAN service
Mixing

Crude Oil Mixers

Static Mixers · Dynamic Mixers · Sample Can Mixers

Welker offers inline pipeline mixers and sample container mixers — covering both the API 8.2 requirement for stream homogenization before extraction and the ASTM D5854 requirement for sample container mixing before laboratory sub-sampling.

  • Static mixer elements for adequate-flow applications
  • Dynamic (powered) mixers for low-flow or high-viscosity streams
  • Sample can / accumulator mixers for container homogenization
  • Mixing quality verification support and documentation
Containers

Crude Oil Sample Containers

Sample Cans · Accumulators · Pressure-Rated Containers

Welker sample containers are designed and manufactured to hold accumulated crude oil samples safely and representatively — maintaining integrity from the point of collection through laboratory analysis and settlement.

  • Standard and pressure-rated containers for light through heavy crude
  • Sealed designs to prevent evaporation and contamination
  • Compatible with Welker extractors and control panels
  • Temperature-insulated configurations for waxy crude service
Control & Integration

Crude Oil Sampling Panels

Control Panels · Flow-Proportional Controllers · SCADA Interface

Welker sampling panels integrate the extractor, container, mixer, and controls into a single, managed sampling system — with proportional-to-flow control, sample status monitoring, and documentation outputs for regulatory compliance.

  • Proportional-to-flow control interfaced with flow computer or meter
  • Sample volume totalizing and event logging
  • Configurable alarm outputs for extractor failure and sample full
  • SCADA-compatible outputs for remote monitoring
Turnkey Systems

Crude Oil Mixing Systems

Engineered Turnkey Systems · API 8.2 Compliant

Welker designs and builds complete, tested crude oil sampling and mixing systems — integrating mixer, extractor, panel, containers, and enclosure into a documented turnkey package ready for field installation.

  • Configured for your crude type, flow range, and site conditions
  • Designed and built at Welker's Sugar Land, TX facility
  • Full documentation package for API and contractual compliance
  • Field and factory service support available post-installation
Application Support

Application Engineering & Selection Support

Worksheets · Specification Support · Expert Consultation

Selecting the right crude oil sampling equipment requires understanding the crude type, API gravity, viscosity, BS&W range, flow rate, temperature, and regulatory context. Welker's application engineers help match the right equipment to your specific application — without obligation.

  • Crude oil application worksheet for equipment selection
  • Direct access to Welker's application engineering team
  • Support for API 8.2 MQF testing and system verification
  • Replacement parts and service for all Welker crude oil equipment

Questions About Crude Oil Sampling?

Whether you're specifying equipment for a new pipeline custody transfer point, troubleshooting an existing sampling system, or working through API MPMS Chapter 8.2 compliance, Welker's application engineers are ready to help.

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