WIRING DIAGRAM/SCHEMATIC - THREE PHASE

 

23

 

 

 

 

 

 

 

BRAKE +

WHITE

 

CLOSE LIMIT

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GREY

COM

GREY

 

NO

 

 

 

ORANGE

COM

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ORANGE

NO

 

 

+CONNECTION SHOWN FOR 208 &

230V - FOR 460V SEE MOTOR DIAG.OPEN LIMIT ON INSIDE OF CONT. BOX COVER

L3

L1

L2

OVERLOAD

 

 

DEVICE

 

 

ORANGE

P4

 

 

 

BLACK

 

 

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HIGH VOLTAGE

K6

K5

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MO1

R89

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COM

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TRANSFORMER

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OFF

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R57

RADIO

24V

COM

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RM2

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VCC

P7

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OPERATING MODES SWITCH SETTINGS

MODE S1 S2 S3 S4

C2

OFF

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ON

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ON

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TS

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Note A:

Connect only one

(1) approved

entrapment

 

CDOMCB2005 c.p.ALLSTAR

 

 

R8

R4

 

 

 

 

C21

 

 

 

R24

 

LOAD

 

 

P5

 

 

 

 

 

 

OVERLOAD

TB1

 

 

 

 

DEVICE

 

 

 

 

 

 

COM

24 VAC

ILOCK

SINGLE

COM

YELLOW

 

 

 

 

 

YELLOW

 

 

 

 

 

SINGLE BUTTON

PB1

PB2

PB3

 

 

C1

OPEN CLOSE STOP

PHOTO

NC REV

NO REV

COM

STOP

CLOSE

OPEN

ON BOARD OPEN/CLOSE/ STOP CONTROL BUTTONS

OPEN

CLOSE

STOP

protection device

(see Page 3) to

Terminals

“COM” and “PHOTO” - additional devices may be connected to Terminals “NC Rev”,

“NO REV” and

“COM”.

EXTERNAL INTERLOCK

SEE

NOTE A

at left

3-WIRE

PHOTOBEAM

*

2-WIRE EDGE

*REMOVE FACTORY JUMPER IF USING NC REV INPUT

THREE PHASE

MOTOR

208/230/460 VAC

MOTOR WIRING CHART

A.O. SMITH

SINGLE VOLTAGE - 115 VAC, 1P MOTOR

RED (AU)

3

BL/BLK

 

BLUE (T,J,H)

RED

 

2

BRAKE

RED (T,J,H)

BLUE

YELLOW

 

BLUE (AU)

1

 

 

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4

 

YELLOW

BL/BLK

TO REVERSE MOTOR, SWITCH LEADS 1 & 3

208/230 VOLTS, 3 PHASE

DUAL VOLTAGE MOTOR

YELLOW

BL/BLK

BRAKE

BLUE (AU)

RED (T,J,H)

 

RED (AU)

BL/BLK

BLUE (T,J,H)

 

TO REVERSE MOTOR DIRECTION, SWITCH ANY TWO INCOMING LEADS.

CDO OPERATORS WITH CDO-MCB MOTOR CONTROL SYSTEM

RED (AU)

 

 

 

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Wire Nut Connection

 

 

Wire Nut Connection

 

 

TO REVERSE MOTOR, SWITCH LEADS 3/4 & 2/1

TO REVERSE MOTOR, SWITCH LEADS L1 & L2

460 VOLTS, 3 PHASE

 

575 VOLTS, 3 PHASE

 

DUAL VOLTAGE MOTOR

 

SINGLE VOLTAGE MOTOR

 

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RED (AU)

 

 

BL/BLK

 

BLUE (T,J,H)

 

 

 

 

 

 

BLUE (T,J,H)

 

 

 

 

TO REVERSE MOTOR DIRECTION, SWITCH

 

TO REVERSE MOTOR DIRECTION, SWITCH

 

ANY TWO INCOMING LEADS.

 

 

ANY TWO INCOMING LEADS.

 

 

BALDOR

DUAL VOLTAGE MOTOR - 115V 1P

YELLOW

1

3

BL/BLK

 

 

 

BLUE (AU)

5

 

BRAKE

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RED (T,J,H)

 

 

 

RED (AU)

8

 

 

WHITE

2

4

BL/BLK

 

 

 

TO REVERSE MOTOR DIRECTION, SWITCH INCOMING LEADS TO TERMINALS 5 AND 8.

BALDOR

DUAL VOLTAGE MOTOR - 230V 1P

1BL/BLK

YELLOW

 

5

2

3

BLUE (T,J,H)

8

 

BRAKE

RED (AU)

 

 

4BL/BLK

WHITE

TO REVERSE MOTOR DIRECTION, SWITCH INCOMING LEADS TO TERMINALS 5 AND 8.

Page 23
Image 23
Linear H-S, J-S owner manual Wiring DIAGRAM/SCHEMATIC Three Phase, Brake + White Close Limit RED Grey COM Orange Blue

H-S, J-S specifications

Linear J-S and H-S are two prominent approaches in the realm of signal processing, particularly focusing on data compression and transmission efficiency. They provide robust methodologies for managing data in systems where bandwidth and storage are critical factors.

Linear J-S, or Linear Jordan-Space signal processing, is characterized by its ability to utilize linear transformations to represent signal variations with minimal loss of information. The main feature of this approach lies in its capacity to maintain high fidelity in signals while significantly reducing bandwidth consumption. By employing linear transformations, such as Fourier or wavelet transforms, Linear J-S efficiently captures the essential components of a signal. This methodology is particularly useful in scenarios involving audio and video data, where maintaining quality during compression is paramount.

One significant technology underpinning Linear J-S is the Fast Fourier Transform (FFT), which allows for rapid computation of the frequency components of a signal. This enables real-time processing and enhances the performance of systems that rely on rapid data transmission. Another critical aspect of Linear J-S is its adaptability to various data types, making it suitable for applications in telecommunications, multimedia, and even biomedical engineering.

On the other hand, Linear H-S, or Linear Harmonic-Skew signal processing, takes a different approach by focusing on harmonic analysis. This technique examines the harmonic content of signals to develop models that can accurately reconstruct the original data from its compressed form. The primary feature of Linear H-S is its robust handling of periodic signals, which allows for accurate representation even in the presence of noise.

Linear H-S technologies often leverage Adaptive Filter Theory and the Discrete Cosine Transform (DCT), which are effective in minimizing artifacts and preserving the integrity of the signal. This makes Linear H-S highly applicable in areas like image processing, where it plays a critical role in JPEG compression, ensuring that the visual quality remains intact without unnecessarily large file sizes.

Both Linear J-S and H-S employ algorithms designed for optimal reconstruction of signals from their compressed forms, emphasizing the need for low latency in applications where speed is crucial. They each have their unique characteristics, making them suitable for different types of signals and applications. While Linear J-S excels in the realm of audio and complex data types, Linear H-S proves to be invaluable in scenarios involving repetitive patterns and periodic signals.

In conclusion, Linear J-S and H-S represent two sophisticated methodologies in signal processing, each with distinct features and technologies designed to optimize data compression while faithfully preserving signal quality. Their applications span across various industries, showcasing their importance in contemporary data communication and multimedia systems.