Linear Input Calibration (continued)

3 Allocate the output devices at function

SP1.D

 

as described in SET-UP, enter the configuration

 

 

into the memory and proceed as follows:

 

i n g s

9 10 11 12 13 14 15 16

+

+

 

 

L

N

 

 

5Vdc 15mA

 

 

1

2

3

4

5

6

7

8

Calculate the values for the controller settings

for HI.SC and SPAN using the example below as a guide:

A d v a n c e d S e t t

26

 

Outputs

 

 

 

 

 

 

4–20 mA

1 ohm

 

 

 

Supply

 

from transducer

 

 

 

 

 

 

 

 

 

 

 

 

 

1 Power up the controller, and in response to

 

the prompt

 

 

 

 

 

 

INPT

select an appropriate Linear Range from

NONE

the table below.

 

 

 

 

 

 

Ensure that the Nominal Signal Span chosen is wider

than the transducer’s actual signal span, and the

 

Nominal Scale is wider than the full scale of the

 

engineering units to be displayed.

 

 

 

 

 

Linear Range

Nom. Signal

Nom. Scale

Max. Scale

Lin 1

Span

Span

Settings

Lin 2

0–20 mV

0

– 100

0 – 400

Lin 3

4–20 mV

0

 

– 100

-25 to 400

Lin 4

0–20 mV

0

–1000

0 to 3000

Lin 5

4–20 mV

0

– 1000

-250 to 3000

 

0–20 mV

0

– 2000

0 to 3000

2 Select

 

 

 

 

 

 

UNIT

then select the process unit, °C, °F, Bar, PSI,

 

Ph, or rh. If the required unit is not shown

 

4 to 7mV input from transducer is required to display 0 - 110 units

Chose Linear Range Lin4 4-20mV = 0 to 1000 units.

HI.SC

HI.SC = Nominal Signal Span x required span

actual signal span

(20-4) x (110-0) = 587 (7-4)

SPAN

SPAN = (hi.SC - nominal scale span) x hi.SC

Nominal Scale Span

(587-1000) x 587 = -242

1000

These settings should provide the correct scaling adjustment, but a value for ZEro may need to be established by applying the lowest and highest mV input signal and recording the display offset. Check that this is the same at each end, and enter this plus or minus value as a ZEro adjustment. Should there be a difference between the two readings, a further adjustment of the SPAn setting can be made.

select Set.

Page 30
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Omega Engineering CN9400 specifications G s, V a n c e d S e t t

CN9400 specifications

The Omega Engineering CN9400 is a cutting-edge device designed for precision temperature control and monitoring in industrial and research applications. This versatile instrument is renowned for its high accuracy, stability, and user-friendly interface, making it an essential tool for engineers and technicians alike.

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