Output Current (Each Output)...........................................................................................................................................200mA
Oscillator Charging Current ..................................................................................................................................................5mA
Derate for Case Temperature above +25˚C........................................................................................................16mW/˚C
Storage Temperature Range ................................................................................................................................-65˚C to +150˚C
Lead Temperature Soldering: Wave Solder (through hole styles only)..........................................10 sec. max, 260°C peak
Reflow (SMD styles only) ......................................................................................60 sec. max above 183°C, 230°C peak
Electrical Characteristics:
0˚C
≤
T
A
≤
+70˚C for the CS3524A; V
IN
= V
CC
= 20V; unless otherwise stated.
PARAMETER
TEST CONDITIONS
MIN
TYP
MAX
UNIT
s
Turn-on Characteristics
Input Voltage
Turn-on Threshold
Turn-on Current
Operating Current
Turn-on Hysteresis*
s
Reference Section
Output Voltage
Line Regulation
Load Regulation
Temperature Stability*
Short Circuit Current
Output Noise Voltage*
Long Term Stability*
T
A
= 25˚C
V
IN
= 10 to 40V
I
L
= 0 to 20mA
Over Operating Range
V
REF
= 0, T
A
= 25˚C
10Hz
≤
f
≤
10kHz, T
A
= 25˚C
T
A
= 125˚C; 1000 Hrs.
4.90
5.00
10
20
20
80
40
20
50
5.20
30
50
50
100
V
mV
mA
mV
mA
µVrms
mV
V
IN
Turn-on - 100mV
V
IN
= 8 to 40V
Operating range after Turn-on
8
5.5
7.5
2.5
5
0.6
40
8.5
4.0
10
V
V
mA
mA
V
s
Oscillator Section (Unless otherwise specified, R
T
= 2700Ω, C
T
= 0.01µF)
Initial Accuracy
Temperature Stability*
Minimum Frequency
Maximum Frequency
Output Amplitude*
Output Pulse Width*
Ramp Peak
Ramp Valley
s
Error Amplifier Section (Unless otherwise specified, V
CM
= 2.5V)
Input Offset Voltage
Input Bias Current
Input Offset Current
Common Mode
Rejection Ratio
Output Swing
V
CM
= 1.5 to 5.5V
Minimum Total Range
2
60
50
0.5
2
1
0.5
75
60
5.0
10
10
1.0
mV
µA
µA
dB
dB
V
T
A
= 25˚C
Over Operating Temperature Range
R
T
= 150kΩ, C
T
= 0.1µF
R
T
= 2.0kΩ, C
T
= 470pF
T
A
= 25˚C
T
A
= 25˚C
3.3
0.7
500
3.5
0.5
3.5
0.9
3.7
1.0
39
43
1
47
2
120
kHz
%
Hz
kHz
V
µs
V
V
Power Supply Rejection Ratio V
IN
= 10 to 40V
* These parameters are guaranteed by design but not 100% tested in production.
CS3524A
Electrical Characteristics:
continued
PARAMETER
TEST CONDITIONS
MIN
TYP
MAX
UNIT
s
Error Amplifier Section (Unless otherwise specified, V
CM
= 2.5V): continued
Open Loop Voltage Gain
Gain-Bandwidth*
∆
VOUT
= 1 to 4V, R
L
≥
10 MΩ
T
A
= 25˚C, A
V
= 0dB
60
80
3
dB
MHz
s
Current Limit Amplifier (Unless otherwise specified, V
SENSE
= V
O
)
Input Offset Voltage
Input Offset Voltage
Input Bias Current
Common Mode
Rejection Ratio
Output Swing
Open Loop Voltage Gain
Delay Time*
s
Output Section (Each Output)
Collector Emitter Voltage
Collector Leakage Current
Saturation
Emitter Output Voltage
Rise Time*
Fall Time*
Comparator Delay*
Shutdown Delay*
Shutdown Threshold
Thermal Shutdown*
* These parameters are guaranteed by design but not 100% tested in production.
Typical Performance Characteristics
Error Amplifier Voltage Gain vs. Frequency Over RF
50
80
T
A
= 25˚C, EA Set for Max. Output
Over Operating Temperature Range
180
170
200
-1
220
230
-10
mV
mV
µA
dB
dB
V
SENSE
= 0 to 15V
Minimum Total Range
∆
VOUT
= 1 to 4V, R
L
≥
10MΩ
∆V
IN
= 300mV
50
50
0.5
70
60
60
5.0
80
300
Power Supply Rejection Ratio V
IN
= 10 to 40V
V
dB
ns
I
C
= 100µA
V
CE
= 50V
I
C
= 20mA
I
C
= 200mA
I
E
= 50mA
T
A
= 25˚C, R = 2kΩ
T
A
= 25˚C, R = 2kΩ
T
A
= 25˚C, V
COMP
to V
OUT
T
A
= 25˚C, V
SHUT
to V
OUT
T
A
= 25˚C, R
C
= 2kΩ
60
80
0.1
0.2
1.0
20.0
0.4
2.2
V
µA
V
V
V
ns
ns
ns
ns
1.0
V
˚C
17
18
200
100
300
200
0.5
0.7
165
Duty Cycle vs. Input Voltage
OPEN VOLTAGE GAIN (dB)
R
F
= 1MΩ
60
R
F
= 300kΩ
R
F
= 100kΩ
40
R
F
= 30kΩ
V
IN
= 20V
T
A
= 25˚C
DUTY-CYCLE (ONE OUTPUT) - %
R
F
=
∞
40
V
IN
= 20V
R
T
= 2700Ω
T
A
= 25˚C
F
=1
0
µ
CT
20
Note: Duty-Cycle is
percent of two
clock periods that
one output conducts
0
1
2
3
4
5
20
0
R
F
is impedance to ground.
Values below 30kΩ will begin
to limit the maximum
duty-cycle.
10
0
100
1k
10k
100k
1M
FREQUENCY (Hz)
INPUT VOLTAGE V
IN
3
CT
=
1
µ
F
30
CS3524A
Typical Performance Characteristics continued
Quiescent Supply Current vs. Supply Voltage Over
Temperature
10
Shutdown Delay From PWM Comparator
OUTPUT (V)
QUIESCENT CURRENT (mA)
9
8
7
6
5
T
A
= -55°C
T
A
= 25°C
T
A
= 125°C
20
15
10
5
0
5
4
3
2
1
0
0
V
IN
= 20V
R
L
= 2kΩ
T
A
= 25˚C
OUTPUT at
V
OA
or V
OB
3
2
Note: Outputs off. R
T
=
∞
1
0
0
10
20
30
40
50
INTPUT (V)
4
INPUT at V
OB
Note: Minimum input pulse width
to latch is 200ns
1
2
3
SUPPLY VOLTAGE V
IN
(V)
DELAY TIME (µs)
Oscillator Frequency vs. Timing Components Resistor
Over Timing Capacitance
1M
Output Dead Time vs. Timing Capacitor Value
10
OSCILLATOR FREQUENCY (Hz)
OUTPUT DEAD TIME (µs)
V
IN
= 20V
T
A
= 25˚C
100k
5.0
V
IN
= 20V
R
T
= 2700Ω
T
A
= 25˚C
2.0
1.0
0.5
C
T
C
T
=1
.0n
=3
.0n
=1
0nf
=3
0nf
f
f
10k
C
T
C
T
1k
f≈ 1.15
R
T
C
T
100
1
2
5
10
C
T
=1
00n
f
0.2
0.1
Note: Dead time = osc output pulse
width plus output delay
1
2
5
10
20
50
100
20
50
100
TIMING RESISTOR - R
T
(kΩ)
TIMING CAPACITOR - C
T
(nf)
Current Limit Amplifier Delay
OUTPUT at COMP
Turn-Off Delay From Shutdown
OUTPUT (V)
20
15
10
5
0
OUTPUT at
V
O
A
OR V
O
B
V
IN
= 20V
R
L
= 2kΩ
T
A
= 25˚C
6
5
4
3
2
1
0
OUTPUT (V)
Overdrive
5%
10%
20%
50%
INTPUT (V)
INPUT at I
SENSE+
0.2
0.1
0.0
0
1
2
V
IN
20V T
A
25˚C
EA+ = V
REF
I
SENSE–
= Gnd
INTPUT (V)
1.0
0.5
0.0
Note: Minimum input pulse width
to latch is 200ns
0
1
2
3
INPUT at
SHUTDOWN
3
4
DELAY TIME (µs)
DELAY TIME (µs)
4
CS3524A
Typical Performance Characteristics continued
Output Saturation Voltage vs. Output Current Over
Temperature
5
4
V
CE
SAT (V)
3
T
A
= 125˚C
2
T
A
= 25˚C
1
T
A
= –55˚C
0
0
50
100
150
200
250
OUTPUT COLLECTOR CURRENT (mA)
Open Loop Test Circuit
V
CC
I
S
V
IN
V
OUTA
V
OUTB
SYNC
2kΩ
1W
2kΩ
1W
SHUTDOWN
CS3524A
I
SENSE
+
I
SENSE
-
COMP
EA+
EA–
E
A
100kΩ 100kΩ
SHUTDOWN
2kΩ
0.1
R
T
C
T
2kΩ
10kΩ
0.1
10kΩ
1kΩ
Note:
The CS3524A should be able to be tested in any 3524 test circuit with two possible exceptions:
1. The higher gain-bandwidth of the current limit amplifier in the CS 3524A may cause oscillations in an uncom-
pensated 3524 test circuit.
2. The effect of the shutdown, cannot be seen at the compensation terminal, but must be
Many people say that BNC signals are better than VGA signals. However, many people nowadays are using LCD screens with VGA interfaces, but few are using monitors with BNC interfaces. So what are the t...
[i=s]This post was last edited by mmmllb on 2014-11-27 09:11[/i] [color=#333333][font=Arial,]I saw a joke on WeChat:[/font][/color][color=#333333][font=Arial,]A CCTV reporter interviewed a Beijing aun...
Recently, I have been studying "TI Boutique Lecture Hall - MSP430 LaunchPad Video". Although I have studied the first few lectures carefully, I found that when doing [After-class Exercises] [Learning ...
ZTE,
caught
in the vortex of
the US ban on the sale
of chips
, has sounded the alarm for China's information technology industry and revealed China's "chip disease". Let's follow the ...[Details]
1.MAX31865 (1 Introduction The MAX31865 is an easy-to-use thermistor-to-digital converter optimized for platinum resistance temperature detectors (RTDs). External resistors set the RTD sensitivity, a...[Details]
1. The first project We are going to create the first project, which is mainly for project analysis, so that we can understand how CubeMX works and how to trace the code logic. Okay, no more nonsense...[Details]
introduction STM32 has many registers, which are difficult to remember, so the official packaged two sets of library functions. One is the standard library, but the official has not updated it on F7,...[Details]
I have always wanted to write some posts and blogs, but I just couldn't bear to do it as I just graduated. After some preparation, I decided to write down some of the things I learned in the past few...[Details]
Time flies. Since the beginning of 2018, news related to home appliance companies have repeatedly made headlines, and competition in the home appliance market continues to intensify. In order to be...[Details]
At the just concluded InfoComm 2018 exhibition, the two major brands, Zhongke Jiguang and China Hualu, both displayed three-color light source
laser TVs
. The outstanding color performance ...[Details]
Kevin Jensen ams Semiconductor
Sensors
and lighting expert. Let's learn more about the relevant content with the network communication editor.
Everything is becoming "smart" these ...[Details]
As the brain of a mobile phone, the mobile phone processing chip is of great importance. Xiaomi, which started out as the MIUI company, has long been keenly aware of the gap between China and devel...[Details]
//Observe the difference between feeding the dog and not feeding the dog, and use the LED indicator of the PB port for status indication. //Switch the LED indicator enable switch of the PB po...[Details]
1. Function and purpose There are two pins BOOT0 and BOOT1 on each STM32 chip. The level status of these two pins when the chip is reset determines which area the program starts from after th...[Details]
STM32 ADC multi-channel conversion Description: Use ADC to continuously collect 11 analog signals and transfer them to memory through DMA. ADC is configured to scan and continuously convert mode,...[Details]
The T3 timer (8-bit) of CC2530 requires understanding of T3CTL, T3CCTL0, T3CC0, T3CCTL1, and T3CC registers. Timer 3/4 is an 8-bit timer with timer/counter/PWM functions. Timer 2, also known as MAC t...[Details]