KONG -Y
NameDescriptionContent
Location:

ABB Advance Optima Module Uras 14

From:ABB | Author:kongjiang | Time :2026-06-17 | 478 Browse: | 🔊 Click to read aloud ❚❚ | Share:

Advance Optima Module Uras 14

Physical principles

Measurement

principle

• NDIR Technique

(Non-Dispersive InfraRed Analysis)

• The measurement effect is based on resonance absorption of gas-specific

vibration-rotation bands of gas molecules with differing atoms in the median

infrared spectrum at wavelengths between 2.8 and 8 µm.

• The individual gases to be measured are identified by their specific absorption

bands. Each gas has such an absorption spectrum (fingerprint).

Exceptions:- Monoatomic gases, such as inert gases- Symmetrical gases, such as N2. O2 and H2- These types of gases cannot be measured with this method.

The relationship between measured infrared emission absorption and the sample

component is based on the LAMBERT-BEER law:

A = (I0  - I1) / I0 = 1 - e -ε(λ)⋅ρ⋅l

where

A

I0

I1

ε(λ)

ρ

l

= Absorption

= Emission entering the cell

= Emission leaving the cell

= Sample component extinction coefficient

= Sample component density

= Sample cell length

The relationship between test component density ρ and its volumetric

concentration c is

ρ = ρ0 ⋅ c ⋅ p/p0 ⋅ T0/T

where

ρ0

p0

T0

= Pure gas density

= Pressure

= Temperature

under standard conditions (1013 hPa, 0°C).

The second equation shows that the sample component's volumetric concentration

depends on the sample cell pressure and temperature.

The first equation finds a non-linear relationship between absorption and volumetric

concentration

Physical principles, continued

IR emission

Choppers

Sample cell

Infrared detector

• Generated by broad-band emitter

• Emitted as a beam package alternately in the form of a sample and reference

beam through the sample and reference chambers of the sample cell and is

partially absorbed by the sample component molecules

• Counterphase modulation by means of a motorized chopper wheel

• Both modulated beam packages appear alternately at the infrared detector

• Created by applicable regulation of the sample and reference beam balance

• Depending on the application, the sample chamber receives a sample, zero-point

or end-point gas flow so that a part of the infrared radiation is absorbed in a

concentration-dependent manner.

• The emission passes unhindered if the reference chamber is filled with a gas that

does not absorb infrared (N2).

• A two-part transmission detector with front and rear chambers filled with the gas

components to be measured; selectivity is determined by the infrared detector.

The two chambers are separated by an infrared-transparent window. Additionally,

the two chambers are separated by a stressed metal membrane with

counterelectrodes. This unit is known as the diaphragm capacitor.

•It reacts in the following manner in the presence of the sample component:

• IR radiation is weakened in the sample cell's sample chamber and enters the

receiver's front chamber.

• The equilibrium between the sample and reference beams initially established

by calibration and the aperture is now disturbed.

• There is an energy difference (temperature change) in the form of reduced

pressure in the front chamber.

• This pressure reduction is transformed into a capacitance change in the

membrane capacitor by deflecting the metal diaphragm.

• Since the diaphragm capacitor is connected to a high-impedance DC voltage, a

corresponding periodic AC signal is generated.

Determination of influence values

Associated gas

effects

Pressure

Flow rate

Temperature

The sample gas is a mixture of the sample component and associated gas

components. If the infrared absorption bands of one or more associated gas

components overlap the sample component's bands, the test results will be

affected.

The influence of interfering gas components is termed cross sensitivity or carrier

gas dependence.

Cross sensitivity is determined by connecting an inert gas (e.g. N2) which is mixed

with the interfering gas components (corresponding to the test gas).

The influence acts on the zero-point measurement value indication.

Carrier gas dependence, which is rarely observed, occurs when the physical

properties of the sample gas differ markedly from those of the test gas. This

interference changes the slope of the device's characteristic curve. This curve is

corrected at the end-point.

The Uras 14 has the following methods available for interference correction:

• Interference filter

• Filter cells

• Internal electronic cross-sensitivity correction

• Internal electronic carrier gas correction

According to the gas laws, the sample cell's volumetric concentration depends on

the pressure in the sample cell and is thus dependent on the process gas and air

pressure. This effect acts on the end-point and amounts to approx. 1% of the

measurement value per 1% of pressure change (therefore, per 10 hPa).

An internal pressure sensor reduces this effect to 0.2%.

The flow rate affects pressure in the sample cell and the module's T90 times.

The flow rate should  be between 20 and 100 liters/hour.

Temperature has a markedly different effect on all optical components in the beam

path. This effect is reduced by:

• Temperature compensation

A temperature sensor in the first infrared detector's preamplifier measures the

temperature in the module.

This signal is used for electronic correction.

  • AEROTECH Automation1 SI4 Stepper Interface
  • AEROTECH Automation1 XI4 Servo Interface
  • AEROTECH AEROTECH Automation1 iXI4 Servo Interface with Motion Controller
  • AEROTECH Automation1 XC6e Enhanced, High-Power PWM Servo Drive
  • AEROTECH Automation1 iXC6e Enhanced, High-Power PWM Servo Drive with Motion Controller
  • AEROTECH Automation1 XC2 Compact PWM Servo Drive
  • AEROTECH Automation1 XC4 PWM Servo Drive
  • AEROTECH Automation1 GL4 Galvo Laser Scan Head Linear Drive
  • AEROTECH Automation1 XC2e Enhanced, Compact Servo Drive with PWM+
  • AEROTECH Automation1 XC4e Enhanced, PWM Servo Drive
  • AEROTECH Automation1 XR3 Multi-Axis Servo Drive Rack
  • AEROTECH Automation1 iXR3 Multi-Axis Servo Drive Rack with Motion Controller
  • AEROTECH Automation1 iXC2 Compact PWM Servo Drive with Motion Controller
  • AEROTECH Automation1 iXC2e Enhanced, Compact PWM+ Servo Drive with Motion Controller
  • AEROTECH Automation1 iXC4 PWM Servo Drive with Motion Controller
  • AEROTECH Automation1 iXC4e Enhanced, PWM Servo Drive with Motion Controller
  • AEROTECH Automation1 iPC Industrial PC with Motion Controller
  • AEROTECH EPICS & TANGO Drivers for Distributed Control Systems
  • AEROTECH .NET, C, Python & LabVIEW APIs Custom Application Develotpmen
  • AEROTECH Automation1 Industrial Ethernet Support
  • AEROTECH Automation1 iSMC Intelligent, Software-Based Motion Controller
  • AEROTECH Automation1 iXA4 1- 2- or 4-Axis PWM Servo Drive with Motion Controller
  • AEROTECH Automation1 XA4 1- 2- or 4-Axis PWM Servo Drive
  • CTI 2500-ADP2-DISC Discrete Wiring Adapter for Series 500
  • CTI 2500-ADP1 Analog Wiring Adapter for Series 500
  • CTI 2500C-RADP-RS485 Remote Base Controller Adapter for Series 500
  • CTI 2500C-RADP-RBC Profibus RBC Adapter for Series 500
  • CTI 2500C-PADP-120V 120VAC 50W Power Supply for Series 500
  • CTI 2500-RADP RBC Adapter for Series 500
  • CTI 2500-R4500 520/530/DBC Adapter for Series 500 - MATURE
  • CTI 2500-PADP Power Supply Adapter for Series 500
  • CTI 2500-IADP I/O Adapter for Series 500
  • CTI 2500-VP15A-N4-W7 15" Flat-Panel PC with Windows® 7 Embedded
  • CTI 2500S-27-1750 Slice I/O, Ethernet, RS232/485. 900MHz, 2DIO / 4UAI / 2AI
  • CTI 2500S-26-1750 Slice I/O, Ethernet, RS232/485. 900MHz, 8DIO / 2UAI
  • CTI 2500S-23-1750 Slice I/O, Ethernet, RS232/485. 900MHz, 4DI / 4DO / 2UAI / 2AO
  • CTI 2500S-27-1550 Slice I/O, RS232/485. 2DIO / 4UAI / 2AI
  • CTI 2500S-26-1550 Slice I/O, RS232/485. 8DIO / 2UAI
  • CTI 2500S-23-1550 Slice I/O, RS232/485. 4DI / 4DO / 2UAI / 2AO
  • CTI 2500S-27-1050 Slice I/O, Ethernet, 2DIO / 4UAI / 2AI
  • CTI 2500S-26-1050 Slice I/O, Ethernet, 8DIO / 2UAI
  • CTI 2500S-23-1050 Slice I/O, Ethernet, 4DI / 4DO / 2UAI / 2AO
  • CTI 2500C-32F-CJC 32-Pin Field Wiring Connector with Cold Junction Compensation
  • CTI 2500C-32F 32-Pin Field Wiring Connector
  • CTI 2500C-8-TC Eight Thermocouple Inputs
  • CTI 2500C-8-RTD Eight RTD Inputs
  • CTI 2500C-8-RL-FC 8 Form-C Relay Outputs
  • CTI 2500C-8-IDO-24V 8 Isolated 24VDC Outputs
  • CTI 2500C-8-IDO-120V 8 Isolated 120VAC Outputs
  • CTI 2500C-16-DO-24V Sixteen 24VDC Digital Outputs
  • CTI 2500C-16-DO-120V Sixteen 120VAC Digital Outputs
  • CTI 500C-16-IDI-24V Sixteen Isolated 24V AC/DC Digital Inputs
  • CTI 2500C-16-IDI-120V Sixteen Isolated 120V AC/DC Digital Inputs
  • CTI 2500C-16-DIDO-SIM Sixteen Digital Input and Output SImulator
  • CTI 2500C-16-DI-24V Sixteen 24V AC/DC Digital Inputs
  • CTI 2500C-16-DI-120V Sixteen 120V AC/DC Digital Inputs
  • CTI 2500C-RBC-RS485 RS485 Remote Base Controller
  • CTI 2500C-RBC-PRF Profibus Remote Base Controller
  • CTI 2500C-PS-24V-35 35-Watt DC Power Supply
  • CTI 2500C-PS-120V-35 35-Watt AC Power Supply
  • CTI 2500C-R8 Eight-Slot Base
  • CTI 2500C-R4 Four-Slot Base
  • CTI 2500C-R16 Sixteen-Slot Base
  • CTI 2500C-2572-B Fast Ethernet TCP/IP Adapter
  • CTI 2500C-J750 Compact Janus PAC with 3MB Project Memory
  • CTI 2500C-C300 CPU with 512K User Memory
  • CTI 2500C-C200 CPU with 256K User Memory
  • CTI 2500C-C100 CPU with 128K User Memory
  • CTI 2500C-8-AO 8 Analog Outputs
  • CTI 2500C-8-AI 8 Analog Inputs
  • CTI 2559-FCAL Precision Calibration Connector
  • CTI 2559-FPC 2559-FPC 40-pin screw terminal connector
  • CTI 2500-RFC PLC to RF Modem Cable
  • CTI 2500-40F 40-Position Standard Screw-Terminal Connector
  • CTI 2505 Vibration Sensor Interface Module
  • CTI 2554-A 4-Channel Isolated High Speed Counter Module
  • CTI 2553-A 2-Channel Mag Meter Input Module
  • CTI 2502 2-Channel High Speed Counter Input Module
  • CTI 2559-TC 8-Channel Thermocouple Input Module
  • CTI 2556-A 16-Channel Isolated Thermocouple Input Module
  • CTI 2556 16-Channel Isolated Thermocouple Input Module
  • CTI 2551-A 8-Channel Isolated Thermocouple Input Module
  • CTI 2559-RTD 8-Channel RTD Input Module
  • CTI 2557-A 16-Channel RTD Input Module
  • CTI 2557 16-Channel RTD Input Module
  • CTI 2552-A 8-Channel Isolated RTD Input Module
  • CTI 2534 8-Point Form-C Relay Output Module
  • CTI 2532 16-Point Form-A Relay Output Module
  • CTI  2531 32-Point Form-A Relay Output Module
  • CTI  2530 8-Point Form-C Relay Output Module
  • CTI  2562 8-Channel Analog Output Module
  • CTI  2560-A 8-Channel Isolated Analog Output Module
  • CTI  2501 8in/4out Analog Module
  • CTI  2558 8-Channel Analog Input Module
  • CTI  2555-A 16-Channel Analog Input Module
  • CTI  2550-A 8-Channel Isolated Analog Input Module
  • CTI  2599 8/16/32-Point AC Output Module
  • CTI  2598-8 8-Point AC Output Module
  • CTI   2598 8/16-Point AC Output Module
  • CTI 2597 8/16/32-Point DC Output Module
  • CTI 2596-8 8-Point DC Output Module
  • CTI 2596 8/16-Point DC Output Module
  • CTI 2595 16-Point TTL/Word Output Module
  • CTI 2591-EF 16-Point Isolated 11-146 VDC Output with Front Panel Accessible Fuses
  • CTI 2591-A 16-Point Isolated 11-146 VDC Output Module
  • CTI 2590-EF 16-Point Isolated 20-132 VAC Output with Front Panel Accessible Fuses
  • CTI 2590-A 16-Point Isolated Discrete 20-132 VAC Output Module
  • CTI 2589-B 8/16/32-Point Universal Discrete Input Module
  • CTI 2589-A 8/16/32-Point Universal Discrete Input Module
  • CTI 2588-8 8-Point Universal Discrete Input Module
  • CTI 2585 16-Point TTL/Word Input Module
  • CTI 2582 16-Point Isolated 125 VDC Input Module
  • CTI 2581 16-Point Isolated 12-56 VDC Input Module
  • CTI 2580 16-Point Isolated 95-132 VAC Input Module
  • CTI 2500-TAP RS485 Network Tap
  • CTI 2500-RIO-B RS485 Remote Base Controller
  • CTI 2500-RIO-A RS485 Remote Base Controller
  • CTI 2500-RBC Profibus Remote Base Controller
  • CTI 2515-A 100-Watt AC/DC Power Supply with Redundancy Support
  • CTI 2515 100-Watt AC Power Supply (MATURE - replaced by 2515-A)
  • CTI 2513-A 75-Watt DC Power Supply with Redundancy Support
  • CTI 2513 75-Watt 24VDC Power Supply
  • CTI 2512-A 75-Watt AC/DC Power Supply with Redundancy Support
  • CTI 2512 75-Watt AC/DC Power Supply
  • CTI 2510 125 VDC Power Supply
  • CTI 2500-SSB Single Slot Blank Front Panel
  • CTI 2500-R11-A Eleven-Slot Redundant Base
  • CTI 2500P-R16 Sixteen-Slot Base with High-Speed Channel