5

3. Names and functions of main parts

Switch for communication speed

&Termination resistor setting (Note) Set the switch before power on

 

 

 

 

 

 

 

 

 

(Back side of the UNIT)

 

 

 

 

 

 

 

 

 

OFF (OPEN)

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

ON

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

1

2

3

4

 

 

(Front side of the UNIT)

 

 

 

 

 

 

 

 

 

(1) Communication speed setting (SW1, 2)

Setting

 

Baud

SW1

 

SW2

rate

OFF

 

OFF

1200

ON

 

OFF

2400

OFF

 

ON

4800

ON

 

ON

9600

Set the communication speed to the same as ASD’s (F800).

(2) Terminating resistor setting (SW3, 4)

SW3-ON : Connecting receiving side

Receiving

 

Transmitting

terminal

 

terminal

RXA, RXB

 

TXA, TXB

 

 

 

SW

R

R

T

T

S

S

X

X

X

X

G

H

A

B

A

B

 

I

E

L

D

INVERTER 1

RS485

OPTION UNIT

INVERTER 2

Signal common terminal

SG

Shield terminal

SHIELD

Connector terminal (socket side) Insert removal terminal block

SW4-ON : Connecting transmitting side

Connect the terminating resistor to both end of system.

Communication connector: INVERTER 1, INVERTER 2

Connect with the communication connector CN1 of the ASD with communication cable.

Connector terminal (removal side)

7mm

M3

 

Connector terminal

 

(removal side)

 

Insert socket

Terminal pitch : 5.08mm

terminal block

Wire size (shielded twisted-pair cable recommended) Bare wire (without stick lug) : 0.2~1.5mm2

Phoenix Contact TWIN terminal : (wire size below) 2

Part number: AI-TWIN20.5-8WH, AI-TWIN20.75-8GY, AI-TWIN21-8RD, AI- TWIN21.5-8BK

Removable terminal block

COMBICON terminal blocks such as the Phoenix Contact TMSTBP series that allows signal branching can be used in place of included terminal.

5

Page 6
Image 6
Toshiba RS-485 operation manual Names and functions of main parts, Shield

RS-485 specifications

The Toshiba RS-485 is a robust and widely used communication standard designed for industrial applications involving serial data transmission. This technology is particularly appreciated for its ability to connect multiple devices (up to 32 nodes) using a simple twisted pair wiring, making it cost-effective and efficient in environments where reliable communication is essential.

One of the main features of the Toshiba RS-485 is its differential signaling technique. This approach significantly reduces noise and allows for long-distance communication, often exceeding 4000 feet. By utilizing a twisted pair cable, RS-485 devices can communicate at baud rates of up to 10 Mbps, although practical distances may require lower speeds to maintain data integrity.

Toshiba's implementation of RS-485 also supports half-duplex and full-duplex modes, providing versatility in how devices communicate. In half-duplex mode, data can be transmitted in both directions but not simultaneously, making it suitable for applications where control over the communication direction is manageable. Full-duplex mode, on the other hand, enables simultaneous two-way communication, improving the speed and efficiency of data transfer.

The Toshiba RS-485 standard is characterized by its robustness in handling high electromagnetic interference (EMI) and its ability to operate in harsh environments. With a wide operating temperature range, the RS-485 devices can function effectively in various industrial settings, from factories to outdoor applications. Furthermore, the standard supports various voltage levels, providing flexibility in design and functionality.

Another essential technology in the Toshiba RS-485 system is its fault tolerance. The differential signaling allows devices to maintain communication even if one of the wires is compromised, providing greater reliability compared to single-ended systems. Additionally, the use of termination resistors helps mitigate reflections, further enhancing performance.

In summary, Toshiba RS-485 technology provides the backbone for reliable, efficient, and robust serial communication in industrial applications. Its features, including long-distance capabilities, support for multiple devices, resistance to noise, and fault tolerance, make it a preferred choice for many engineers and system designers. This standard not only meets the demands of the industry but also adapts to the evolving technological landscape, ensuring that it remains relevant in the years to come.