VBT-BD SERIES · UCO TO B100 BIODIESEL

Used Cooking Oil
Biodiesel Plant

Complete UCO-to-B100 Production Line

A complete production line that converts used cooking oil into B100 biodiesel through feedstock pretreatment, esterification, two-stage transesterification, glycerol separation, methanol recovery and final purification.

5–100+ t/day

Processing Capacity

Used Cooking Oil

Primary Feedstock

B100 Biodiesel

Final Product

PLC + HMI

Automatic Control

B100 BIODIESEL

——– 01

Product Overview & Standards

FINAL PRODUCT

B100 Biodiesel

Produced from used cooking oil for use as neat biodiesel or as a diesel blending component, subject to local regulations and final testing.

EUROPEAN TARGET

EN 14214

Engineering can be based on the selected EN 14214 fuel-quality targets.

U.S. TARGET

ASTM D6751

Engineering can be based on ASTM D6751 requirements for B100 blendstock.

01

Product Output

One final product: B100 biodiesel made from used cooking oil.

02

Target Standard

Choose EN 14214 or ASTM D6751 before plant engineering and configuration.

03

Quality Verification

Finished-product laboratory testing confirms compliance; color alone does not determine fuel quality.

≥96.5%

EN Ester Target

≤0.020%

Free Glycerol

≤0.50

Acid Value mg KOH/g

1 Product

B100 Biodiesel

——– 02

Applicable Feedstock

This plant is designed for used cooking oil. Feedstock analysis determines pretreatment, esterification, catalyst dosage and final purification.

SELECTED FEEDSTOCK

Used Cooking Oil

SELECTED FEEDSTOCK

High-FFA UCO

SELECTED FEEDSTOCK

Used Frying Oil

SELECTED FEEDSTOCK

Recovered Food-Service Grease

PRIMARY FEEDSTOCK · UCO

Used Cooking Oil

RECOMMENDED PROCESS

Heating & filtration → Vacuum dehydration → Conditional esterification → Transesterification

Plant Configuration

Standard UCO pretreatment

Design Basis

Acid value, water, insoluble impurities, phosphorus and metals.

HIGH ACID VALUE UCO

High-FFA UCO

RECOMMENDED PROCESS

Filtration → Vacuum dehydration → Acid esterification → Two-stage transesterification

Plant Configuration

Esterification + transesterification

Design Basis

Esterification endpoint and catalyst dosage are confirmed by feedstock testing.

RESTAURANT & FOOD FACTORY OIL

Used Frying Oil

RECOMMENDED PROCESS

Screening → Fine filtration → Vacuum dehydration → Reaction → Purification

Plant Configuration

Enhanced solids removal

Design Basis

Particle load, water, acid value and oxidation condition.

PRIMARY FEEDSTOCK · UCO

Recovered Food-Service Grease

RECOMMENDED PROCESS

Feed conditioning → Filtration → Dehydration → Esterification as required → Reaction

Plant Configuration

Project-specific pretreatment

Design Basis

A representative laboratory report and sample trial are required.

FEEDSTOCK SCOPE

The standard plant is engineered for UCO and related food-service oils. Petroleum waste oil and pyrolysis oils cannot be converted into biodiesel by transesterification.

——– 03

Plant System

The complete line integrates UCO pretreatment, reaction, phase separation, methanol recovery, biodiesel purification and automatic control.

VBT-BD · COMPLETE PRODUCTION LINE

01

02

03

04

Used Cooking Oil Biodiesel Plant

Feedstock

Used cooking oil

Final product

B100 biodiesel

Capacity

5–100+ t/day

Reaction

Esterification + two stages

Separation

Centrifuge or rapid settling

Methanol

Recovery + rectification + recycle

Purification

Polishing + vacuum distillation

Control

PLC + HMI

——– 04

Biodiesel Production Process

Methanol is rectified for reuse. Biodiesel is purified by polishing, thin-film evaporation and, where required, high-vacuum molecular distillation.

COMPLETE PROCESS · 11 STEPS

PROCESS STEP 01

01

Used Cooking Oil Biodiesel Plant

Acid value Water Impurities

PURPOSE OF THIS STEP

Defines pretreatment and reaction conditions

COMPLETE PROCESS · 11 STEPS

PROCESS STEP 02

02

Filtration & Vacuum Dehydration

Heated filtration Vacuum drying Stable feed

PURPOSE OF THIS STEP

Produces clean, low-water feedstock

COMPLETE PROCESS · 11 STEPS

PROCESS STEP 03

03

Conditional Acid Esterification

High-FFA feed Acid catalyst FFA reduction

PURPOSE OF THIS STEP

Prepares high-acid UCO for transesterification

COMPLETE PROCESS · 11 STEPS

PROCESS STEP 04

04

First-Stage Transesterification

Typical 55–65°C Metered dosing Controlled conversion

PURPOSE OF THIS STEP

Forms a crude biodiesel and glycerol mixture

COMPLETE PROCESS · 11 STEPS

PROCESS STEP 05

05

Intermediate Glycerol Separation

Centrifugal option Rapid separation Glycerol removal

PURPOSE OF THIS STEP

Avoids traditional 8–12 hour settling

COMPLETE PROCESS · 11 STEPS

PROCESS STEP 06

06

Second-Stage Transesterification

Second methanol dose Final conversion Lower glycerides

PURPOSE OF THIS STEP

Improves conversion and product consistency

COMPLETE PROCESS · 11 STEPS

PROCESS STEP 07

07

Biodiesel / Glycerol Separation

Interface control Two-phase separation Glycerol recovery

PURPOSE OF THIS STEP

Sends crude biodiesel to methanol removal

COMPLETE PROCESS · 11 STEPS

PROCESS STEP 08

08

Methanol Recovery & Rectification

Methanol stripping Rectification Closed-loop reuse

PURPOSE OF THIS STEP

Reduces fresh methanol consumption

COMPLETE PROCESS · 11 STEPS

PROCESS STEP 09

09

Water Washing or Dry Polishing

Water wash option Dry polishing Soap removal

PURPOSE OF THIS STEP

Reduces soap, catalyst, salts and metals

COMPLETE PROCESS · 11 STEPS

PROCESS STEP 10

10

Thin-Film Evaporation

Vacuum light removal Short residence time Thermal protection

PURPOSE OF THIS STEP

Stabilizes B100 biodiesel quality

COMPLETE PROCESS · 11 STEPS

PROCESS STEP 11

11

High-Vacuum Molecular Distillation

High vacuum Short-path transfer Final polishing

PURPOSE OF THIS STEP

Provides the final purification step for B100

FEEDSTOCK

Used Cooking Oil

REACTION

Esterification + Transesterification

SEPARATION & RECOVERY

Glycerol + Methanol

FINAL PRODUCT

B100 Biodiesel

——– 05

EPCM Services

VBOLT supports design-basis confirmation, engineering, manufacturing, installation, commissioning, training and plant operation.

BIODIESEL PLANT EPCM

PROJECT STAGE 01

Design Basis Confirmation

Confirm feedstock analysis, capacity, target standard, annual operating hours and local utility conditions.

VBOLT Work

  • Review UCO analysis
  • Select process route
  • Confirm site conditions

Stage Deliverables

  • Review UCO analysis
  • Select process route
  • Confirm site conditions

BIODIESEL PLANT EPCM

PROJECT STAGE 02

Process & Engineering Design

Complete mass balance, process flow, major equipment selection, control philosophy, utilities and preliminary layout.

VBOLT Work

  • Mass and energy balance
  • Equipment and instrument selection
  • PFD / P&ID and layout coordination

Stage Deliverables

  • Process engineering package
  • Equipment configuration list
  • Utility requirements

BIODIESEL PLANT EPCM

PROJECT STAGE 03

Manufacturing & FAT

Manufacture core equipment, modular piping, platforms, instruments and control cabinets to approved engineering documents.

VBOLT Work

  • Material and welding control
  • Module pre-assembly
  • Control function checks

Stage Deliverables

  • Manufacturing records
  • Factory acceptance test report
  • Packing and shipping documents

BIODIESEL PLANT EPCM

PROJECT STAGE 04

Installation & Commissioning

Support installation checks, cold and hot commissioning, feed introduction, parameter optimization and performance runs.

VBOLT Work

  • Installation supervision
  • Individual and integrated tests
  • Feedstock trial run

Stage Deliverables

  • Commissioning records
  • Operating parameter window
  • Acceptance documentation

BIODIESEL PLANT EPCM

PROJECT STAGE 05

Training & Operating Support

Train the operating team on startup, shutdown, quality control, equipment maintenance and safe methanol handling.

VBOLT Work

  • Operator and maintenance training
  • Spare-parts planning
  • Remote and on-site support

Stage Deliverables

  • Operating manual
  • Training records
  • Maintenance and spare-parts list

——– 06

Core Process Technologies

Four process systems address UCO variability, reaction conversion, methanol recycling, final purification and continuous separation.

CORE TECHNOLOGY 01

Esterification + Two-Stage Transesterification

High-FFA UCO is esterified first. Glycerol is removed after the first transesterification stage, then a second methanol and catalyst dose drives conversion further.

01 Reduces soap and emulsion risk

02 Lowers residual glycerides

03 Handles variation in UCO acid value

PROJECT STAGE 02

Methanol Recovery & Rectification

Recovered methanol contains water and process impurities. A rectification column separates them before qualified methanol returns to the reaction section.

01 Recovers methanol from two streams

02Removes water before recycle

03Controls condensation, reflux and reboiler conditions

PROJECT STAGE 03

Continuous Separation & PLC Control

Centrifugal or rapid phase separation replaces long natural settling. The PLC records dosing, temperature, time, vacuum and separation parameters.

01 Short biodiesel residence time

02 Supports low methanol and glycerol targets

03 Distillation of biodiesel, not rectification

CORE TECHNOLOGY 04

Esterification + Two-Stage Transesterification

High-FFA UCO is esterified first. Glycerol is removed after the first transesterification stage, then a second methanol and catalyst dose drives conversion further.

01 Reduces 8–12 hour settling delays

02 Centralized interface and flow monitoring

03 Recipes, alarms and batch records

———— 07

Core Equipment

Select a module to review its function, process duty and main control points.

MODULE 01 · PRETREATMENT

UCO Pretreatment System

Feed pumps, heaters, filters, vacuum dehydration and an acid-esterification interface prepare variable-quality UCO for stable reaction.

  • Heated and insulated transfer
  • Vacuum dehydration
  • Recipe set by feedstock analysi

MODULE 02 · REACTION

Two-Stage Reaction System

Two reaction stages use controlled methanol and catalyst dosing, with glycerol removal between stages to improve conversion.

  • Metered methanol and catalyst
  • Temperature and residence-time contro
  • Intermediate glycerol separation

MODULE 03 · METHANOL RECOVERY

Methanol Recovery System

Methanol is recovered from biodiesel and crude glycerol, rectified to remove water and returned to the reaction section.

  • Recovery from two streams
  • Rectification and dehydration
  • Condensation, reflux and recycle

MODULE 04 · FINAL PURIFICATION

Biodiesel Purification System

Polishing, thin-film evaporation and high-vacuum molecular distillation are combined according to the UCO analysis and target standard.

  • Wet or dry polishing
  • Thin-film evaporation
  • Molecular distillation

MODULE 05 · AUTOMATION

PLC + HMI Control System

Centralized control monitors temperature, pressure, vacuum, flow, level and phase interface, with safety interlocks for methanol.

  • Batch recipe management
  • Trends, alarms and interlocks
  • Production data traceability

———— 08

Models & Processing Capacity

Model numbers indicate nominal feedstock capacity. Final configuration is based on UCO analysis, operating hours and the target standard.

SELECTED MODEL

VBT-BD-05

Nominal capacity

5 t/day

Equipment footprint

Project layout

Control system

PLC + HMI

Operating mode

Batch / modular

Operating staff

2–3 per shift

Final product

B100 biodiesel

SELECTED MODEL

VBT-BD-10

Nominal capacity

10 t/day

Equipment footprint

Project layout

Control system

PLC + HMI

Operating mode

Batch or continuous

Operating staff

3 per shift

Final product

B100 biodiesel

SELECTED MODEL

VBT-BD-20

Nominal capacity

20 t/day

Equipment footprint

Project layout

Control system

PLC + HMI

Operating mode

Continuous

Operating staff

3–4 per shift

Final product

B100 biodiesel

SELECTED MODEL

CUSTOM EPCM

Nominal capacity

50 t/day

Equipment footprint

Project layout

Control system

PLC + HMI

Operating mode

Continuous

Operating staff

4–5 per shift

Final product

B100 biodiesel

SELECTED MODEL

CUSTOM EPCM

Nominal capacity

100+ t/day

Equipment footprint

Site-specific plot plan

Control system

PLC + HMI

Operating mode

Continuous / custom

Operating staff

By automation level

Final product

B100 biodiesel

———— 09

Technical Data

These values support preliminary plant selection. Final guarantees, dimensions and consumption figures are defined in the technical agreement.

ParameterReference or TargetNotes
FeedstockUsed cooking oil (UCO)Representative analysis required
Final productB100 biodieselFAME is the chemical fuel component
Target standardsEN 14214 or ASTM D6751Project target confirmed before design
Reaction temperatureTypically 55–65°CFinal value set by catalyst system and trials
Methanol specificationTypically ≥99.8%, low waterRecovered methanol is rectified before reuse
Phase separationCentrifuge or controlled rapid settlingSelected by capacity and feedstock
Final purificationPolishing + thin film + optional molecular distillationConfigured to feedstock and target specification
ParameterReference or TargetNotes
Electrical supply380 V / 50 Hz or project standardMotors, pumps, vacuum and controls
Heat sourceSteam, thermal oil or electricSelected for plant size and local energy
Cooling waterClosed-loop systemReaction cooling, methanol condensation and vacuum
Instrument air0.6–0.8 MPaControl valves and actuators
NitrogenLow-pressure connectionMethanol handling and inerting
Typical electricity25–60 kWh/t feedstockDepends on vacuum and heating configuration
Typical steam0.20–0.35 t/t feedstockPreliminary engineering reference
ParameterReference or TargetNotes
Ester contentEN target ≥96.5%Gas chromatography
Acid value≤0.50 mg KOH/gReaction and polishing control
Methanol≤0.20% by massMethanol removal and recovery
Free glycerol≤0.020% by massSeparation and purification
Total glycerolEN target ≤0.25%; ASTM target ≤0.24%Two-stage reaction and final purification
WaterEN target ≤500 mg/kgVacuum dehydration and product storage
Na + K / Ca + MgEach group target ≤5 mg/kgCatalyst removal and polishing

———— 10

Material Balance & Operating Consumption

Adjust daily feedstock capacity and UCO acid value to view a preliminary engineering estimate.

———— 11

VBOLT Supply & Customer Scope

VBOLT SUPPLY & SERVICES

VBOLT Scope

Design basis, PFD and equipment configuration

Core process equipment and module piping

PLC + HMI cabinet and field instruments

Platforms, pre-assembly and factory acceptance test

Installation support, commissioning and training

SITE WORK & UTILITIES

Customer Scope

Building, foundations, roads and civil works

UCO, methanol, B100 and crude-glycerol tank farm

External power, heat source, cooling water and air

Fire protection, wastewater treatment and local EHS systems

Local erection, permits and statutory approvals

———— 12

Project Images

Equipment views show the reaction, methanol recovery, biodiesel purification and automatic control modules.

USED COOKING OIL BIODIESEL PLANT

Complete UCO-to-B100 Production Line

Process-contact equipment is configured in stainless steel, with black skid frames, yellow safety rails and centralized PLC + HMI control.

PLANT MODULE 01

Two-Stage Transesterification System

PLANT MODULE 02

Methanol Recovery & Rectification

PLANT MODULE 03

Biodiesel Purification System

PLANT MODULE 04

PLC + HMI Control System

———— 13

Frequently Asked Questions

Common questions before selecting a used cooking oil biodiesel plant.

The plant converts used cooking oil into B100 biodiesel. FAME appears in technical descriptions because it is the principal chemical component produced by transesterification.

Yes. The process and equipment are configured for the selected target standard. Final compliance must be verified by laboratory testing.

No. Industrial plants can use centrifugal separation or controlled rapid settling to shorten phase-separation time significantly.

Alkaline transesterification requires low-water methanol, typically industrial methanol at ≥99.8% purity. Recovered methanol is rectified before reuse.

Methanol is rectified. Biodiesel can be treated by thin-film evaporation and high-vacuum molecular distillation. These are different separation duties.

Properly purified B100 is commonly clear to pale yellow. Color depends on UCO pigments and oxidation and is not, by itself, a fuel-quality acceptance criterion.

Crude glycerol is collected separately and methanol is recovered first. Dry polishing can reduce wastewater compared with water washing.

Please provide UCO analysis, daily capacity, operating hours, target fuel standard, project country, available utilities and site conditions.

———— 14

Get a Process Proposal

01 UCO type and analysis

02 Daily capacity and operating hours

03 Target fuel standard

04 Project country and utilities

USED COOKING OIL BIODIESEL PLANT

Complete UCO-to-B100 Production Line

1. Interested Solutions *Select the project you are planning to invest in.

Interested Solutions

2. Contact InformationGet Started — Your information will be kept confidential.

3. Project Requirements