How-to’s
Section 5-1
291
The evident solution is:
n
= 100 and
m
= 1224. Or, when we simplify the
factors:
n
= 25 and
m
= 306. Therefore: Pn205 = m – 1 = 305. With these
settings, executing
MOVE(180)
moves the moving part 180 tenths of an angle
degree or 18 angle degrees in forward direction.
5-1-3-7 Example 5
The mechanical system uses a servo motor with a 17-bit absolute encoder.
The mechanical gear ratio of the gearbox is 1:10. The pulley has got 12 teeth,
and each two are 50 mm apart. One complete turn of the pulley equals 144
stations on the main wheel. The distance between two stations is 50 mm. The
mechanical measurement units must mm. Total repeat distance must be the
distance between two stations, 50mm.
With the same procedure as in example 1, we have:
Therefore, if we use the mechanical system to set the electronic gear ratio, we
have:
One possible solution is:
Because 2
17
/50 is a number with an infinite number of decimal digits, we can
choose the following:
Therefore, the parameters are:
m motor_revolution = n machine_cycle = n 12.24 motor_revolution
.
.
.
.
M
17-bit absolute
encoder
1:10 Gear
Pulley: 12 teeth
50mm between teeth
Main Wheel: 144 stations
50 mm between stations
Pn202
Pn203
UNITS =
2
17
encoder_counts
1 motor_revolution
1 pulley_revolution
10 motor_revolution
12 station
1 pulley_revolution
12 50
2
17
10 encoder_counts
mm
=
50mm
1 station
=
.
.
.
.
.
.
.
.
.
.
.
Pn202
Pn203
UNITS
50
2
17
10
=
12
Pn202 = 5
Pn203 = 6
Pn205 = 4
UNITS =
50
2
17
Pn202
Pn203
UNITS
50 12
10
17
= 2
17
= 2
600
10
17
= 2
60
1
15
= 2
1
2
2 15
15
1
17
= 2
.
.
Summary of Contents for SYSMAC CJ Series
Page 2: ......
Page 70: ...Specifications Section 2 4 58...
Page 84: ...FINS commands Section 3 4 72...
Page 148: ...All BASIC commands Section 4 2 136 AXIS 1 AXIS 0...
Page 370: ...Section 358...