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EE-SY169/169A
Phototransistor Output with Convergent Lens for Precise Sensing Sensing accuracy as high as 0.6 mm Model with a red LED assures smooth
sensing of dyestuffs (EE-SY169)
Ideal to be built into printers and copy
machines for sensing paper edges
Ordering Information
Appearance Sensing method Reflective, convergent lens Sensing distance 4 mm Sensing object White paper with reflection factor of 90% Output configuration Phototransistor Weight Approx. 1.0 g Part number EE-SY169 Red LED EE-SY169A IR LED
Specifications
ABSOLUTE MAXIMUM RATINGS (TA = 25C (77F))
Item Input Forward current Pulse forward current Reverse voltage Output Collector-emitter voltage Collector current Collector dissipation Ambient temperature Operating Storage Symbol IF IFP VR VCEO IC PC Topr Tstg Rated value EE-SY169 40 mA* 300 mA** 3V 30 V 20 mA 100 mW 0C to 70C** (32F to 158F) -20C to 80C (-4F to 176F) EE-SY169A 50 mA* 1 A** 3V 30 V 20 mA 100 mW 0C to 70C** (32F to 158F) -20C to 80C (-4F to 176F)
*Refer to Engineering Data if the ambient temperature is not within the normal room temperature range. **This value was measured with a pulse width of 10 s and a repeating frequency of 100 Hz.
EE-SY169/169A
EE-SY169/169A
CHARACTERISTICS (TA = 25C (77F))
Item Emitter Forward voltage Reverse current Peak emission wavelength Receiver Dark current Peak spectral sensitivity wavelength Combination Light current Leakage current Rising time*** Falling time*** Symbol y VF IR EE-SY169 Value 2.3 V max. 10 A max. 660 nm typ. 200 nA max. 850 nm typ. 160 to 2,000 A 2 A max. 30 s typ. 30 s typ. Condition IF = 20 mA VR = 3 V IF = 20 mA VCE = 5 V, 0x VCE = 5 V IF = 20 mA* VCE = 5 V IF = 20 mA** VCE = 5 V VCC = 5 V RL = 1 k IL = 1 mA EE-SY169A Value 1.5 V max. 10 A max. 920 nm typ. 200 nA max. 850 nm typ. 160 to 2,000 A 2 A max. 30 s typ. 30 s typ. Condition IF = 30 mA VR = 4 V IF = 20 mA VCE = 5 V, 0x VCE = 5 V IF = 20 mA* VCE = 10 V IF = 20 mA** VCE = 10 V VCC = 5 V RL = 1 k IL = 1 mA
p(L)
ID
p(P)
IL ILEAK tr tf
*The sensing object is white paper with a reflection factor of 90% at a sensing distance of 4.0 mm. **The sensing object reflects no light. ***The following illustrations show the rising time, tr, and the falling time, tf.
Sensing object Input 0 90% 10% t tr tf Output Input RL VCC
t
Output 0
Engineering Data
Note: The operating conditions of the photomicrosensor must be within the absolute maximum rating ranges.
TEMPERATURE CHARACTERISTICS
EE-SY169
Pc
EE-SY169A
Forward current I F (mA) Collector dissipation PC (mW)
Pc
Forward current I F (mA) Collector dissipation PC (mW)
IF
IF
Ambient temperature TA (C)
Ambient temperature TA (C)
EE-SY169/169A
EE-SY169/169A
INPUT CHARACTERISTICS (TYPICAL)
EE-SY169 EE-SY169A
Forward current I F (mA) Forward current I F (mA)
TA = --30C TA = +25C TA = +70C
Forward voltage VF (V)
Forward voltage VF (V)
INPUT/OUTPUT CHARACTERISTICS (TYPICAL)
EE-SY169 EE-SY169A
Light current I L ( A) Light current I L ( A)
3.5 mm 4.0 mm 4.5 mm 3.5 mm 4.0 mm 4.5 mm
Sensing distance L (paper with a reflection factor of 90%) VCE = 5 V
Sensing distance L (paper with a reflection factor of 90%) VCE = 5 V
Forward current IF (mA)
Forward current IF (mA)
OUTPUT CHARACTERISTICS (TYPICAL)
EE-SY169 EE-SY169A
Light current I L ( A) Light current I L ( A) Collector-emitter voltage VCE (V) Collector-emitter voltage VCE (V)
Sensing distance L (paper with a reflection factor of 90%) 3.5 mm 4.0 mm 4.5 mm Sensing distance L (paper with a reflection factor of 90%) 3.5 mm 4.0 mm 4.5 mm
EE-SY169/169A
EE-SY169/169A
LIGHT CURRENT TEMPERATURE DEPENDENCY (TYPICAL)
EE-SY169 EE-SY169A
Change rate of IL (%) Change rate of IL (%)
Ambient temperature TA (C)
Sensing distance L = 4.0 mm (paper with a reflection factor of 90%) IF = 20 mA VCE = 5 V
Ambient temperature TA (C)
Sensing distance L = 4.0 mm (paper with a reflection factor of 90%) IF = 20 mA VCE = 5 V
SENSING POSITION CHARACTERISTICS (TYPICAL)
EE-SY169
Relative light current IL (%)
EE-SY169A
Relative light current IL (%)
Distance d2 (mm)
TA = 25 C IF = 20 mA VCE = 5 V Sensing object: White paper with a reflection factor of 90% 3.5 mm 4.0 mm 4.5 mm TA = 25 C IF = 20 mA VCE = 5 V
Distance d2 (mm)
3.5 mm 4.0 mm 4.5 mm
Sensing object: White paper with a reflection factor of 90%
EE-SY169/169A
EE-SY169
Relative light current IL (%)
EE-SY169/169A
EE-SY169A
Relative light current IL (%)
Distance d2 (mm)
TA = 25 C IF = 20 mA VCE = 5 V Sensing object: White paper with a reflection factor of 90% 3.5 mm 4.0 mm 4.5 mm TA = 25 C IF = 20 mA VCE = 5 V
Distance d2 (mm)
3.5 mm 4.0 mm 4.5 mm
Sensing object: White paper with a reflection factor of 90%
LEAKAGE CURRENT CHARACTERISTICS (TYPICAL)
EE-SY169
VCE = 5 V
EE-SY169A
VCE = 5 V
Current leakage I LEAK (nA)
Current leakage I LEAK (nA)
Forward current IF (mA)
Forward current IF (mA)
SENSING DISTANCE CHARACTERISTICS (TYPICAL)
EE-SY169
TA = 25 C IF = 20 mA VCE = 10 V Sensing object: White paper with a reflection factor of 90%
EE-SY169A
TA = 25 C IF = 20 mA VCE = 10 V Sensing object: White paper with a reflection factor of 90%
Light current I L ( A)
Light current I L ( A)
Distance d (mm)
Distance d (mm)
EE-SY169/169A
EE-SY169/169A
SWITCHING CHARACTERISTICS
(RISING TIME) (TYPICAL)
EE-SY169
Switching regulator tr, tf ( s)
Input
IL
VCC
OUT
RL
RL = 4.7 k
RL = 1 k RL = 470 RL = 100
Light current IL (mA)
SENSING ANGLE CHARACTERISTICS (TYPICAL)
EE-SY169
+
EE-SY169A
+
0
Relative light current IL (%)
Relative light current IL (%)
-
d
d
-
d = 3 mm d = 4 mm d = 5 mm
d = 3 mm d = 4 mm d = 5 mm
Angle deviation ()
Angle deviation ()
Dimensions
Unit: mm (inch)
EE-SY169/169A
3.2 0.5 A 6 2.5 1.8 1.6 12.5 K E
Internal Circuit
C
8 1 3.2 4.8 1 dia. 7 9.2 1 dia. Two, C0.2
Terminal No. A K C E
Name Anode Cathode Collector Emitter
3
(Bottom view)
EE-SY169/169A
EE-SY169/169A
Precautions
Refer to the Technical Information Section for general precautions.
NOTE: DIMENSIONS SHOWN ARE IN MILLIMETERS. To convert millimeters to inches divide by 25.4.
Omron Europe B.V. EMA-ISD, tel:+31 23 5681390, fax:+31 23 5681397, http://www.eu.omron.com/ema
Cat. No. EO5DAX4
1/99
Specifications subject to change without notice.
Printed in U.S.A.


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