Bunge Control System Migration China | SENTRADO

A detailed case study of SENTRADO's industrial automation solution delivering measurable results for food processing operations in China.

Food Processing 📍 China ⚙️ Full Plant DCS Migration 📅 Completed 2024
Project Overview

Project Background & Objectives

Bunge, the global agribusiness and food ingredient leader, selected SENTRADO to execute a complete legacy industrial control system (ICS) to Siemens PCS 7 DCS migration at their soybean processing complex in China. The project encompassed replacing an end-of-life distributed control system that had been in operation for nearly two decades, with a modern, integrated platform that would support the plant's next phase of growth and digital transformation.

The existing ICS, while historically reliable, had become increasingly difficult and expensive to maintain. The vendor had discontinued support, spare parts lead times stretched to months, and the system lacked the connectivity and data capabilities required for modern manufacturing. Bunge needed a migration partner that could deliver a complete turnkey solution — from engineering and panel manufacturing to software development, commissioning, and long-term support — with proven experience in large-scale DCS migration within the food processing sector.

SENTRADO's local presence in China was a decisive factor, enabling close collaboration with Bunge's engineering team throughout the project and rapid on-site response when needed. The project was delivered from our Beijing headquarters and Yanjiao manufacturing facility.

Customer Challenge

Problems We Had to Solve

1. End-of-Life ICS Platform

The legacy DCS was no longer supported by the original manufacturer. Critical components such as I/O cards, power supplies, and operator stations were failing at increasing rates, with replacement parts available only through third-party refurbishers at exorbitant prices.

2. Continuous Processing Requirement

Soybean processing is a continuous operation. The extraction and refining trains cannot be stopped and restarted without significant product loss, equipment stress, and days of ramp-up time. The migration had to maintain production continuity throughout.

3. Data Historian Migration

Years of historical process data stored in the legacy historian needed to be preserved and migrated to the new platform. This data was essential for regulatory reporting, process optimization, and long-term trend analysis.

4. Function Block Reengineering

The legacy system's control logic, developed over many years, contained undocumented modifications and custom-tuned parameters that had been optimized for the specific plant. Simply translating code line-by-line would not capture the operational know-how embedded in these modifications.

5. Operator Change Management

The plant's operators had over a decade of experience with the old HMI. A radical interface change could lead to operational errors during the transition period. The new system needed to balance modern usability with familiar operational concepts.

SENTRADO Solution

Our Approach & System Architecture

SENTRADO delivered a complete EPC (Engineering, Procurement, Construction) migration to the Siemens PCS 7 DCS platform, utilizing AS 410 controllers with ET 200SP HA distributed I/O. The system was designed with full redundancy at the controller, network, and server levels to maximize availability. The migration strategy used a sequential area-by-area approach, with each process cell — from receiving and preparation through extraction, refining, and packaging — converted independently during carefully planned maintenance windows.

Rather than simply translating legacy code, SENTRADO's process engineers worked alongside Bunge's senior operators to document the actual control behavior, including all undocumented tuning parameters and operational workarounds. This knowledge was then reengineered using PCS 7's advanced process library (APL) function blocks, which provided superior control performance, built-in diagnostics, and standardized faceplates. The historian migration used a data extraction and transformation pipeline that preserved 10+ years of process data with full timestamp integrity.

The HMI design process included multiple review cycles with Bunge's operations team to ensure that critical information was presented in a familiar layout while incorporating modern ergonomic principles. The new WinCC system includes high-performance process graphics, alarm shelving, ergonomic color schemes, and a mobile viewer for supervisors. Comprehensive operator training was delivered using a simulator that replicated the actual plant responses before go-live.

System Architecture Highlights

  • Siemens PCS 7 v9.1 with AS 410 redundant controllers
  • ET 200SP HA distributed I/O with full hot-swap capability
  • Sequential area-by-area migration maintaining production continuity
  • Process knowledge capture and APL function block reengineering
  • 10+ years of historian data migrated with timestamp integrity
  • WinCC OA with high-performance HMI graphics and alarm shelving
  • Redundant servers, network, and controllers at all levels
  • Operator training simulator with plant-faithful dynamic model
Technical Specifications

System Parameters & Configuration

Control SystemSiemens PCS 7 DCS v9.1
Controllers4 × AS 410 (redundant pairs)
Total I/O Points3,600+ (AI: 520, AO: 180, DI: 2,100, DO: 800)
Communication ProtocolPROFINET IRT / PROFIBUS DP / OPC UA
HMI / SCADAWinCC OA — 5 OS + 2 EWS + Web server
Control Cabinets14 × IP54 with redundant cooling
Distributed I/O Stations24 × ET 200SP HA
HistorianProcess Historian with 10+ years migrated data
Power Range380V 3-phase, 50Hz, UPS-backed
RedundancyFull CPU, network, and server redundancy
Migration Phases6 sequential process area cutovers
Data Integrity100% historical data preserved and accessible
Equipment Used

Key Components & Hardware

Siemens AS 410 Controller

6ES7410-5HX08-0AB0

PCS 7 high-performance AS

ET 200SP HA I/O

6DL5110-0AL10-0AX0

Hot-swap remote I/O for PCS 7

PCS 7 Engineering Suite

6ES7658-5AX18-0YA5

DCS engineering software

WinCC OA Server

6AV6371-1DN07-0AX0

SCADA server with redundancy

SCALANCE X308-2

6GK5308-2FL10-2AA3

Layer 3 managed PROFINET switch

SITOP UPS1600

6EP4137-3AB00-0AY0

Uninterruptible power supply

SITRANS FM MAG 5000

7ME6910-1AA30-1AA0

Electromagnetic flow transmitter

Rittal VX25 Baying

VX 8806.000

Modular cabinet baying system

Implementation Timeline

Project Phases

Process Knowledge Capture

6 weeks

Work with operators to document actual control behavior

Detailed Engineering

10 weeks

DCS architecture, I/O scheduling, panel design

Panel Manufacturing

8 weeks

14 cabinets built at SENTRADO facility

Software Development

14 weeks

PCS 7 engineering, APL blocks, HMI, historian

FAT & Simulation

4 weeks

Full system test with operator training simulator

Phase 1-3 Migration

12 weeks

Preparation, extraction, refining area cutovers

Phase 4-6 Migration

10 weeks

Packaging, utilities, storage area cutovers

SAT & Optimization

4 weeks

Performance tuning, final documentation, handover

Quantified Results

Measurable Outcomes

Performance data verified after system commissioning and sustained operation.

100%
Production Continuity

No unplanned outages during migration

100%
Data Preserved

All historical data migrated and accessible

99.8%
System Availability

Post-migration DCS uptime

40%
Faster Diagnostics

Mean time to repair significantly reduced

Before vs After: Quantified Comparison

Metric Before After Change
Production during migration At risk of extended outage 100% continuity Zero outage
Historical data access Fragmented legacy systems 100% migrated & accessible Full access
System availability ~95% (aging DCS) 99.8% +4.8 pts
Mean time to repair (MTTR) Hours (manual diagnosis) 40% faster with diagnostics −40%
Platform standardization Multiple legacy platforms Single Siemens platform Unified

Data based on project commissioning reports and sustained operational measurements. Client name available under NDA.

Bottom Line Impact

The delivered automation system exceeded all performance targets specified in the contract, achieving higher throughput, lower energy consumption, and improved product quality compared to the baseline operation. The client reported full return on investment within the projected payback period and has since engaged SENTRADO for additional plant expansion phases.

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