欢迎访问ic37.com |
会员登录 免费注册
发布采购
所在地: 型号: 精确
  • 批量询价
  •  
  • 供应商
  • 型号
  • 数量
  • 厂商
  • 封装
  • 批号
  • 交易说明
  • 询价
  •  
  • 北京元坤伟业科技有限公司

         该会员已使用本站17年以上

  • CS7054YDWR16
  • 数量-
  • 厂家-
  • 封装-
  • 批号-
  • -
  • QQ:857273081QQ:857273081 复制
    QQ:1594462451QQ:1594462451 复制
  • 010-62104931、62106431、62104891、62104791 QQ:857273081QQ:1594462451
更多
  • CS7054YDWR16图
  • 深圳市欧瑞芯科技有限公司

     该会员已使用本站11年以上
  • CS7054YDWR16 现货库存
  • 数量6000 
  • 厂家ON(安森美) 
  • 封装16-SOIC(0.295,7.50mm 宽) 
  • 批号22+ 
  • 原装正品现货,可开专票,欢迎采购!!!
  • QQ:3354557638QQ:3354557638 复制
    QQ:3354557638QQ:3354557638 复制
  • 18565729389 QQ:3354557638QQ:3354557638
  • CS7054YDWR16图
  • 集好芯城

     该会员已使用本站13年以上
  • CS7054YDWR16
  • 数量1068 
  • 厂家ON Semiconductor 
  • 封装 
  • 批号最新批次 
  • 原厂原装公司现货
  • QQ:3008092965QQ:3008092965 复制
    QQ:3008092965QQ:3008092965 复制
  • 0755-83239307 QQ:3008092965QQ:3008092965
  • CS7054YDWR16图
  • 深圳市富莱微科技有限公司

     该会员已使用本站6年以上
  • CS7054YDWR16
  • 数量6401 
  • 厂家ON Semiconductor 
  • 封装16-SOIC 
  • 批号20+ 
  • 进口原装,公司现货
  • QQ:1968343307QQ:1968343307 复制
    QQ:2885835292QQ:2885835292 复制
  • 0755-83210149 QQ:1968343307QQ:2885835292
  • CS7054YDWR16图
  • 深圳市正信鑫科技有限公司

     该会员已使用本站12年以上
  • CS7054YDWR16
  • 数量5000 
  • 厂家ON 
  • 封装原厂封装 
  • 批号22+ 
  • 原装正品★真实库存★价格优势★欢迎来电洽谈
  • QQ:1686616797QQ:1686616797 复制
    QQ:2440138151QQ:2440138151 复制
  • 0755-22655674 QQ:1686616797QQ:2440138151
  • CS7054YDWR16图
  • 深圳市迈锐达科技有限公司

     该会员已使用本站14年以上
  • CS7054YDWR16
  • 数量1500 
  • 厂家ONS 
  • 封装 
  • 批号08+ 
  • 原装现货!冷门优势库存
  • QQ:603546486QQ:603546486 复制
    QQ:1181043992QQ:1181043992 复制
  • 86-0755 QQ:603546486QQ:1181043992
  • CS7054YDWR16图
  • 深圳市华芯盛世科技有限公司

     该会员已使用本站13年以上
  • CS7054YDWR16
  • 数量865000 
  • 厂家ONSEMI 
  • 封装原厂封装 
  • 批号最新批号 
  • 一级代理,原装特价现货!
  • QQ:2881475757QQ:2881475757 复制
  • 0755-83225692 QQ:2881475757
  • CS7054YDWR16图
  • 深圳市宇川湘科技有限公司

     该会员已使用本站6年以上
  • CS7054YDWR16
  • 数量12660 
  • 厂家ON 
  • 封装16-SOIC 
  • 批号23+ 
  • 原装正品现货,郑重承诺只做原装!
  • QQ:2885348305QQ:2885348305 复制
    QQ:2885348305QQ:2885348305 复制
  • 0755-84534256 QQ:2885348305QQ:2885348305
  • CS7054YDWR16图
  • 深圳市欧瑞芯科技有限公司

     该会员已使用本站11年以上
  • CS7054YDWR16
  • 数量9500 
  • 厂家ON(安森美) 
  • 封装16-SOIC(0.295,7.50mm 宽) 
  • 批号24+ 
  • 绝对原装正品,可开专票,欢迎采购!!!
  • QQ:3354557638QQ:3354557638 复制
    QQ:3354557638QQ:3354557638 复制
  • 18565729389 QQ:3354557638QQ:3354557638
  • CS7054YDWR16图
  • 深圳市博正芯科技有限公司

     该会员已使用本站6年以上
  • CS7054YDWR16
  • 数量13500 
  • 厂家onsemi 
  • 封装原装 
  • 批号21+ 
  • ★★正品专卖,进口原装深圳现货★★
  • QQ:639834857QQ:639834857 复制
    QQ:1487625604QQ:1487625604 复制
  • 0755-82545278 QQ:639834857QQ:1487625604
  • CS7054YDWR16图
  • 深圳市一线半导体有限公司

     该会员已使用本站11年以上
  • CS7054YDWR16
  • 数量22000 
  • 厂家ON Semiconductor 
  • 封装 
  • 批号 
  • 全新原装部分现货其他订货
  • QQ:2881493920QQ:2881493920 复制
    QQ:2881493921QQ:2881493921 复制
  • 0755-88608801多线 QQ:2881493920QQ:2881493921
  • CS7054YDWR16图
  • 深圳市科雨电子有限公司

     该会员已使用本站9年以上
  • CS7054YDWR16
  • 数量1001 
  • 厂家ON 
  • 封装SOP-16 
  • 批号24+ 
  • ★体验愉快问购元件!!就找我吧!《停产物料》
  • QQ:97671956QQ:97671956 复制
  • 171-4729-1886(微信同号) QQ:97671956

产品型号CS7054YDWR16的Datasheet PDF文件预览

CS7054  
Low Side PWM FET  
Controller  
The CS7054 is a monolithic integrated circuit designed primarily to  
control the rotor speed of permanent magnet, direct current (DC)  
brush motors. It drives the gate of an N channel power MOSFET or  
IGBT with a user–adjustable, fixed frequency, variable duty cycle,  
pulse width modulated (PWM) signal. The CS7054 can also be used to  
control other loads such as incandescent bulbs and solenoids.  
Inductive current from the motor or solenoid is recirculated through an  
external diode.  
http://onsemi.com  
DIP–14  
N SUFFIX  
CASE 646  
14  
The CS7054 accepts a DC level input signal of 0 to 5.0 V to control  
the pulse width of the output signal. This signal can be generated by a  
potentiometer referenced to the on–chip 5.0 V linear regulator, or a  
filtered 0% to 100% PWM signal also referenced to the 5.0 V  
regulator.  
The IC is placed in a sleep state by pulling the CTL lead below 0.5 V.  
In this mode everything on the chip is shut down except for the  
on–chip regulator and the overall current draw is less than 275 µA.  
There are a number of on–chip diagnostics that look for potential  
failure modes and can disable the external power MOSFET.  
1
SO–16L  
DW SUFFIX  
CASE 751G  
16  
1
PIN CONNECTIONS AND  
MARKING DIAGRAMS  
1
14  
OUTPUT  
GND  
V
CC  
PGND  
INH  
Features  
FLT  
200 mA Peak PWM Gate Drive Output  
C
R
I
OSC  
ADJ  
Patented Voltage Compensation Circuit  
100% Duty Cycle Capability  
5.0 V, ± 3.0% Linear Regulator  
Low Current Sleep Mode  
I
I
OSC  
SENSE+  
CTL  
NC  
SENSE–  
V
REG  
DIP–14  
Overvoltage Protection  
Overcurrent Protection of External MOSFET/IGBT  
Output Inhibit  
1
16  
OUTPUT  
V
CC  
GND  
FLT  
NC  
PGND  
INH  
C
OSC  
R
CTL  
I
I
I
OSC  
ADJ  
SENSE+  
NC  
SENSE–  
NC  
V
REG  
SO–16L  
A
WL, L  
YY, Y  
= Assembly Location  
= Wafer Lot  
= Year  
WW, W = Work Week  
ORDERING INFORMATION  
Device  
Package  
Shipping  
CS7054YN14  
25 Units/Rail  
46 Units/Rail  
DIP–14  
SO–16L  
SO–16L  
CS7054YDW16  
CS7054YDWR16  
1000 Tape & Reel  
Semiconductor Components Industries, LLC, 2001  
1
Publication Order Number:  
January, 2001 – Rev. 12  
CS7054/D  
CS7054  
MOT+  
MOT–  
R
42.5 µH  
R
GATE  
S
V
BAT  
6
51  
10 µF  
0.01 µF  
1.0 M  
1000 µF  
1000 µF  
OUTPUT  
GND  
V
CC  
PGND  
C
0.25 µF  
390 pF  
FLT  
INH  
FLT  
CS7054  
C
OSC  
C
I
R
OSC  
ADJ  
CS1  
R
I
OSC  
SENSE+  
C
51 Ω  
0.022 µF  
R
CS  
OSC  
R
SENSE  
105 k  
CTL  
NC  
I
SENSE–  
4.0 mΩ  
R
CS2  
V
REG  
51 Ω  
PWM  
Input  
10 k  
10 k  
10 k  
10 k  
10 k  
P1  
100 k  
10 k  
N1  
10 µF  
10 k  
Figure 1. Application Diagram  
ABSOLUTE MAXIMUM RATINGS*  
Rating  
Value  
Unit  
°C  
V
Storage Temperature  
–65 to 150  
–0.3 to 30  
40  
V
CC  
Supply Voltage Range (Load Dump = 26 V w/Series 51 Resistor) V Peak Transient Voltage  
V
CC  
Input Voltage Range (at any input)  
Maximum Junction Temperature  
–0.3 to 10  
150  
V
°C  
kV  
ESD Susceptibility (Human Body Model)  
2.0  
Lead Temperature Soldering  
Wave Solder (through hole styles only) Note 1.  
Reflow (SMD styles only) Note 2.  
260 peak  
230 peak  
°C  
°C  
1. 10 seconds max.  
2. 60 seconds max above 183°C  
*The maximum package power dissipation must be observed.  
http://onsemi.com  
2
CS7054  
ELECTRICAL CHARACTERISTICS (8.0 V < V < 16 V; –40°C < T < 125°C; unless otherwise specified.)  
CC  
A
Characteristic  
Test Conditions  
Min  
Typ  
Max  
Unit  
V
CC  
Supply  
Operating Current Supply  
Quiescent Current  
5.0  
170  
19.5  
325  
10  
275  
21  
mA  
µA  
V
V
CC  
= 12 V  
Overvoltage Shutdown  
Overvoltage Hysteresis  
Control (CTL)  
18  
150  
500  
mV  
Control Input Current  
Sleep Mode Threshold  
Sleep Mode Hysteresis  
Current Sense  
CTL = 0 V to 5.0 V  
–2.0  
8.0  
50  
0.1  
10  
2.0  
12  
µA  
% V  
REG  
100  
150  
mV  
Differential Voltage Sense  
I
I
= 51.2% V  
and R = 51 Ω  
CS1  
60.5  
–5.0  
79.5  
2.0  
mV  
ADJ  
REG  
I
Input Current  
= 0 V to 5.0 V  
0.3  
µA  
ADJ  
ADJ  
Linear Regulator  
Output Voltage  
Inhibit  
V
CC  
= 13.2 V  
4.85  
5.00  
5.15  
V
Inhibit Threshold  
Inhibit Hysteresis  
40  
50  
60  
% V  
REG  
150  
325  
575  
mV  
External Drive (OUTPUT)  
Output Frequency  
R
= 105 k, C  
= 390 pF  
17  
20  
23  
kHz  
OSC  
OSC  
Voltage to Duty Cycle Conversion  
V
CC  
V
CC  
= 13 V, CTL = 30% V  
= 13 V, CTL = 70% V  
26.3  
69.5  
38.5  
81.5  
%
%
REG  
REG  
Output Rise Time  
V
V
V
V
= 13 V, R  
= 13 V, R  
= 13 V, R  
= 13 V, R  
= 1.0 mA  
= 6.0 , C  
= 6.0 , C  
= 6.0 , C  
= 6.0 , C  
= 5.0 nF  
= 5.0 nF  
= 5.0 nF  
= 5.0 nF  
0.25  
0.3  
400  
400  
1.0  
1.0  
µs  
µs  
mA  
mA  
V
CC  
CC  
GATE  
GATE  
GATE  
GATE  
GATE  
GATE  
GATE  
GATE  
Output Fall Time  
Output Sink Current  
Output Source Current  
Output High Voltage  
Output Low Voltage  
CC  
CC  
I
I
V
CC  
– 1.7  
OUT  
OUT  
= –1.0 mA  
1.3  
V
http://onsemi.com  
3
CS7054  
PACKAGE PIN DESCRIPTION  
PACKAGE PIN #  
DIP–14  
SO–16L  
PIN SYMBOL  
FUNCTION  
MOSFET Gate Drive.  
1
2
1
OUTPUT  
2
GND  
FLT  
Ground.  
3
3
4
Fault time out capacitor.  
Oscillator capacitor.  
Oscillator resistor.  
4
C
R
OSC  
OSC  
5
5
6
6
CTL  
NC  
Pulse width control input.  
No connection.  
7
7, 8, 15  
9
8
V
REG  
5.0 V linear regulator.  
Current sense minus.  
Current sense plus.  
Current limit adjust.  
Output Inhibit.  
9
10  
11  
I
I
SENSE–  
SENSE+  
10  
11  
12  
13  
14  
12  
13  
14  
16  
I
ADJ  
INH  
PGND  
Power ground for on chip clamp.  
Positive power supply input.  
V
CC  
GND  
V
CC  
V
REG  
5.0 V Regulator  
Overvoltage  
OUTPUT  
+
_
Clamp  
V
CC  
PGND  
+
_
+
_
INH  
CTL  
+
_
Q
S
R
Reset  
Current  
Sense  
I
SENSE+  
Triangle  
Oscillator  
I
SENSE–  
Timer  
Out In  
+
_
I
ADJ  
FLT  
C
R
OSC  
OSC  
Figure 2. Block Diagram  
http://onsemi.com  
4
CS7054  
TYPICAL PERFORMANCE CHARACTERISTICS  
5.04  
5.02  
5.00  
4.98  
4.96  
4.94  
5.04  
5.02  
2.0 mA  
100 µA  
2.0 mA  
100 µA  
5.00  
4.98  
4.96  
4.94  
5.0 mA  
5.0 mA  
–50  
0
50  
Temperature  
100  
150  
–50  
0
50  
Temperature  
100  
150  
Figure 3. VREG vs. Temperature @ VCC = 8.0 V  
Figure 4. VREG vs. Temperature @ VCC = 12 V  
5.04  
5.02  
5.00  
4.98  
4.96  
4.94  
1.7  
1.6  
1.5  
1.4  
2.0 mA  
100 µA  
I = 2.0 mA  
5.0 mA  
1.3  
1.2  
1.1  
1.0  
–50  
0
50  
100  
150  
–50  
0
50  
100  
150  
Temperature  
Temperature  
Figure 5. VREG vs. Temperature @ VCC = 16 V  
Figure 6. OUTPUT Saturation Voltage (Sourcing  
Current) vs Temperature  
1.3  
I = 2.0 mA  
1.2  
1.1  
–50  
0
50  
Temperature  
100  
150  
Figure 7. OUTPUT Voltage (Sinking Current) vs  
Temperature  
http://onsemi.com  
5
CS7054  
APPLICATIONS INFORMATION  
THEORY OF OPERATION  
is compared to the oscillator voltage to produce the  
compensated duty cycle. The transfer is set up so that at V  
CC  
Oscillator  
= 14 V the duty will equal V  
divided by V  
. For  
CTL  
REG  
The IC sets up a constant frequency triangle wave at the  
lead whose frequency is determined by the external  
example at V = 14 V, V  
= 5.0 V and V  
= 2.5 V, the  
CC  
REG  
CTL  
C
OSC  
duty cycle would be 50% at the output. This would place a  
7.0 V average voltage across the load. If V then drops to  
components R  
and C  
by the following equation:  
OSC  
OSC  
CC  
10 V, the IC would change the duty cycle to 70% and hence  
keep the average load voltage at 7.0 V.  
0.83  
Frequency +  
R
  C  
OSC  
OSC  
The peak and valley of the triangle wave are proportional  
to V by the following:  
120  
100  
CC  
V
+ 0.2   V  
VALLEY  
CC  
CC  
V
CC  
= 8.0 V  
V
+ 0.8   V  
80  
60  
40  
20  
0
PEAK  
V
CC  
= 14 V  
This is required to make the voltage compensation  
function properly. In order to keep the frequency of the  
V
CC  
= 16 V  
oscillator constant the current that charges C  
must also  
OSC  
vary with supply. R  
sets up the current which charges  
OSC  
C
OSC  
. The voltage across R  
is 50% of V  
and  
OSC  
CC  
therefore:  
V
CC  
I
+ 0.5   
10  
20  
30  
40  
50  
60  
70  
80  
90 100  
ROSC  
R
OSC  
CTL Voltage (% of V  
)
REG  
I
is multiplied by two (2) internally and transferred  
ROSC  
Figure 8. Voltage Compensation  
to the C  
lead. Therefore:  
OSC  
5.0 V Linear Regulator  
V
CC  
I
+"  
COSC  
There is a 5.0 V, 5.0 mA linear regulator available at the  
lead for external use. This voltage acts as a reference  
R
OSC  
V
REG  
The period of the oscillator is:  
for many internal and external functions. It has a drop out of  
approximately 1.5 V at room temperature and does not  
require an external capacitor for stability.  
V
* V  
PEAK  
I
VALLEY  
T + 2C  
 
OSC  
COSC  
The R  
and C  
components can be varied to create  
OSC  
OSC  
Current Sense and Timer  
frequencies over the range of 15 Hz to 25 kHz. With the  
suggested values of 105 kand 390 pF for R and C  
The IC differentially monitors the load current on a cycle  
OSC  
OSC  
by cycle basis at the I  
and I  
leads. The  
SENSE+  
SENSE–  
respectively, the nominal frequency will be approximately  
20 kHz. I , at V = 14 V, will be 66.7 µA. I should  
differential voltage across these two leads is amplified  
internally and compared to the voltage at the I lead. The  
ROSC  
CC  
ROSC  
ADJ  
not change over a more than 2:1 ratio and therefore C  
should be changed to adjust the oscillator frequency.  
OSC  
gain, A , is set internally and externally by the following  
V
equation:  
Voltage Duty Cycle Conversion  
V
I(ADJ)  
* I  
SENSE*  
37000  
1000 ) R  
A
+
+
V
The IC translates an input voltage at the CTL lead into a  
duty cycle at the OUTPUT lead. The transfer function  
incorporates ON Semiconductor’s patented Voltage  
Compensation method to keep the average voltage and  
current across the load constant regardless of fluctuations in  
the supply voltage. The duty cycle is varied based upon the  
input voltage and supply voltage by the following equation:  
I
SENSE)  
CS  
The current limit (I ) is set by the external current sense  
LIM  
resistor (R  
) placed across the I  
terminals and the voltage at the I  
and I  
SENSE+ SENSE–  
SENSE  
lead.  
ADJ  
1000 ) R  
V
I(ADJ)  
SENSE  
CS  
I
+
 
LIM  
37000  
R
2.8   V  
The R resistors and C components form a differential  
low pass filter which filters out high frequency noise  
generated by the switching of the external MOSFET and the  
CTL  
CS  
CS  
Duty Cycle + 100%   
V
CC  
An internal DC voltage equal to:  
associated lead noise. R also forms an error term in the  
CS  
V
+ (1.683   V  
) ) V  
CTL  
gain of the I  
equation because the I  
and I  
SENSE+ SENSE–  
DC  
VALLEY  
LIM  
http://onsemi.com  
6
CS7054  
Overvoltage Shutdown  
leads are low impedance inputs thereby creating a good  
The IC will disable the output during an overvoltage  
event. This is a real time fault event and does not set the  
internal latch and therefore is independent of the oscillator  
timing (i.e. asynchronous). There is no undervoltage  
lockout. The device will shutdown gracefully once it runs  
out of headroom. This happens at the point when VREG falls  
out of regulation.  
current sensing amplifier. Both leads source 50 µA while the  
chip is in run mode. R should be much less than 1000 Ω  
CS  
to minimize error in the I  
equation. I  
should be biased  
LIM  
ADJ  
between 1.0 V and 4.0 V.  
When the current through the external MOSFET exceeds  
, an internal latch is set and the output pulls the gate of  
I
LIM  
the MOSFET low for the remainder of the oscillator cycle  
(fault mode). At the start of the next cycle, the latch is reset  
and the IC reverts back to run mode until another fault  
occurs. If a number of faults occur in a given period of time,  
the IC “times out” and disables the MOSFET for a long  
period of time to let it cool off. This is accomplished by  
Reverse Battery  
The CS7054 will not survive a reverse battery condition.  
Therefore, a series diode is required between the battery and  
the V lead.  
CC  
charging the C  
condition occurs. If a cycle goes by with no overcurrent fault  
occurring, an even smaller amount of charge will be  
capacitor each time an over current  
FLT  
Load Dump  
V
CC  
is internally clamped to 30 V. It is recommended that  
a 51 resistor, (R ) is placed in series with V to limit the  
current flow into the IC in the event of a 40 V peak transient  
condition.  
S
CC  
removed from C . If enough faults occur together,  
FLT  
eventually C  
will charge up to 2.4 V and the fault latch  
FLT  
will be set. The fault latch will not be reset until the C  
FLT  
Using the CS7054 as a Frequency Converter  
Figure 9 shows the CS7054 configured for use as a  
frequency converter. In the setup shown, a 150 Hz square  
wave from a microprocessor is converted to a 10 kHz square  
wave. The duty cycle of each waveform is identical. The  
amplitude of the input waveform is 5.0 V, but does not need  
to be. The input amplitude requirement just needs to be high  
enough to switch the external bipolar transistor. The 10 kHz  
oscillator frequency is setup per the oscillator section of this  
data sheet.  
discharges to 0.6 V. This action will continue indefinitely if  
the fault persists.  
The off time and on time are set by the following:  
2.4 V * 0.6 V  
Off Time + C  
On Time + C  
 
 
FLT  
FLT  
4.5 mA  
2.4 V * 0.6 V  
I
AVG  
where:  
The external resistor divider composed of the 3.6 k and  
6.2 k resistors supplies 5.0 V to the CTL pin when the input  
duty cycle is at 100%. This also makes the output waveform  
100%.  
I
+ (295.5 mA   DC) * [4.5 mA   (1 * DC)]  
AVG  
I
+ (300 mA   DC) * 4.5 mA  
AVG  
The RC filter (1.0 Mand 0.1 µF) sets up a pole at 1.6 Hz:  
DC + PWM Duty Cycle  
1
1
f +  
+
2pRC  
(6.2 k)(3.6 k)  
Sleep State  
2p 1 MW ) ǒ  
Ǔ
ƫ(0.1 mF)  
ƪ
6.2 k)3.6 k  
This device will enter into a low current mode (< 275 µA)  
when CTL lead is brought to less than 0.5 V. All functions  
are disabled in this mode, except for the regulator.  
+ 1.6 Hz  
In this case, the pole is 2 orders of magnitude below the  
input waveform. Care must be taken to provide the  
appropriate DC level on the control pin in addition to  
providing the required response time.  
Inhibit  
When the inhibit voltage is greater than 2.5 V the internal  
latch is set and the external MOSFET will be turned off for  
the remainder of the oscillator cycle. The latch is then reset  
at the start of the next cycle.  
*Note the current limit feature of the CS7054 has been  
defeated by grounding the I  
and the I  
pins and  
SENSE+  
SENSE–  
connecting the I  
lead to V  
.
ADJ  
REG  
http://onsemi.com  
7
CS7054  
10 Ω  
V
BAT  
10 µF  
V
CC  
0
OUTPUT  
V
CC  
f = 10 kHz  
GND  
FLT  
PGND  
INH  
820 pF  
CS7054  
C
R
I
OSC  
OSC  
ADJ  
I
SENSE+  
100 kΩ  
150 Hz  
CTL  
NC  
I
SENSE–  
5.0 V  
0
V
REG  
MCU  
100 k  
100 k  
100 k  
Q2  
6.2 k  
3.6 k  
1.0 MΩ  
0.1 µF  
Q1  
Figure 9. Frequency Converter  
http://onsemi.com  
8
CS7054  
PACKAGE DIMENSIONS  
DIP–14  
N SUFFIX  
CASE 646–04  
ISSUE M  
NOTES:  
1. DIMENSIONING AND TOLERANCING PER ANSI  
Y14.5M, 1982.  
2. CONTROLLING DIMENSION: INCH.  
3. DIMENSION L TO CENTER OF LEADS WHEN  
FORMED PARALLEL.  
14  
1
8
7
B
4. DIMENSION B DOES NOT INCLUDE MOLD FLASH.  
5. ROUNDED CORNERS OPTIONAL.  
INCHES  
DIM MIN MAX  
MILLIMETERS  
A
F
MIN  
18.16  
6.10  
4.06  
0.38  
1.02  
MAX  
18.80  
6.60  
4.57  
0.51  
1.52  
A
B
C
D
F
0.715  
0.240  
0.160  
0.015  
0.040  
0.740  
0.260  
0.180  
0.020  
0.060  
L
N
C
G
H
J
0.100 BSC  
2.54 BSC  
0.052  
0.008  
0.115  
0.290  
---  
0.072  
0.012  
0.135  
0.310  
10  
1.32  
0.20  
2.92  
7.37  
---  
1.83  
0.30  
3.43  
7.87  
10  
–T–  
SEATING  
PLANE  
K
L
J
K
M
N
_
_
0.020  
0.040  
0.51  
1.02  
D 14 PL  
H
G
M
M
0.13 (0.005)  
SO–16L  
DW SUFFIX  
CASE 751G–03  
ISSUE B  
A
D
q
16  
9
NOTES:  
1. DIMENSIONS ARE IN MILLIMETERS.  
2. INTERPRET DIMENSIONS AND TOLERANCES  
PER ASME Y14.5M, 1994.  
3. DIMENSIONS D AND E DO NOT INLCUDE MOLD  
PROTRUSION.  
4. MAXIMUM MOLD PROTRUSION 0.15 PER SIDE.  
5. DIMENSION B DOES NOT INCLUDE DAMBAR  
PROTRUSION. ALLOWABLE DAMBAR  
PROTRUSION SHALL BE 0.13 TOTAL IN EXCESS  
OF THE B DIMENSION AT MAXIMUM MATERIAL  
CONDITION.  
1
8
MILLIMETERS  
B
16X B  
DIM MIN  
MAX  
2.65  
0.25  
0.49  
0.32  
10.45  
7.60  
A
A1  
B
C
D
E
2.35  
0.10  
0.35  
0.23  
10.15  
7.40  
M
S
S
B
0.25  
T A  
e
1.27 BSC  
H
h
10.05  
0.25  
0.50  
0
10.55  
0.75  
0.90  
7
SEATING  
PLANE  
L
14X  
e
q
_
_
C
T
PACKAGE THERMAL DATA  
Parameter  
DIP–14  
48  
SO–16L  
23  
Unit  
°C/W  
°C/W  
R
R
Typical  
Typical  
Θ
Θ
JC  
JA  
85  
105  
http://onsemi.com  
9
CS7054  
Notes  
http://onsemi.com  
10  
CS7054  
Notes  
http://onsemi.com  
11  
CS7054  
ON Semiconductor and  
are trademarks of Semiconductor Components Industries, LLC (SCILLC). SCILLC reserves the right to make changes  
without further notice to any products herein. SCILLC makes no warranty, representation or guarantee regarding the suitability of its products for any particular  
purpose, nor does SCILLC assume any liability arising out of the application or use of any product or circuit, and specifically disclaims any and all liability,  
including without limitation special, consequential or incidental damages. “Typical” parameters which may be provided in SCILLC data sheets and/or  
specifications can and do vary in different applications and actual performance may vary over time. All operating parameters, including “Typicals” must be  
validated for each customer application by customer’s technical experts. SCILLC does not convey any license under its patent rights nor the rights of others.  
SCILLC products are not designed, intended, or authorized for use as components in systems intended for surgical implant into the body, or other applications  
intended to support or sustain life, or for any other application in which the failure of the SCILLC product could create a situation where personal injury or  
death may occur. Should Buyer purchase or use SCILLC products for any such unintended or unauthorized application, Buyer shall indemnify and hold  
SCILLC and its officers, employees, subsidiaries, affiliates, and distributors harmless against all claims, costs, damages, and expenses, and reasonable  
attorney fees arising out of, directly or indirectly, any claim of personal injury or death associated with such unintended or unauthorized use, even if such claim  
alleges that SCILLC was negligent regarding the design or manufacture of the part. SCILLC is an Equal Opportunity/Affirmative Action Employer.  
PUBLICATION ORDERING INFORMATION  
NORTH AMERICA Literature Fulfillment:  
CENTRAL/SOUTH AMERICA:  
Literature Distribution Center for ON Semiconductor  
P.O. Box 5163, Denver, Colorado 80217 USA  
Spanish Phone: 303–308–7143 (Mon–Fri 8:00am to 5:00pm MST)  
Email: ONlit–spanish@hibbertco.com  
Phone: 303–675–2175 or 800–344–3860 Toll Free USA/Canada  
Fax: 303–675–2176 or 800–344–3867 Toll Free USA/Canada  
Email: ONlit@hibbertco.com  
ASIA/PACIFIC: LDC for ON Semiconductor – Asia Support  
Phone: 303–675–2121 (Tue–Fri 9:00am to 1:00pm, Hong Kong Time)  
Toll Free from Hong Kong & Singapore:  
Fax Response Line: 303–675–2167 or 800–344–3810 Toll Free USA/Canada  
001–800–4422–3781  
N. American Technical Support: 800–282–9855 Toll Free USA/Canada  
Email: ONlit–asia@hibbertco.com  
EUROPE: LDC for ON Semiconductor – European Support  
German Phone: (+1) 303–308–7140 (Mon–Fri 2:30pm to 7:00pm CET)  
Email: ONlit–german@hibbertco.com  
JAPAN: ON Semiconductor, Japan Customer Focus Center  
4–32–1 Nishi–Gotanda, Shinagawa–ku, Tokyo, Japan 141–0031  
Phone: 81–3–5740–2745  
French Phone: (+1) 303–308–7141 (Mon–Fri 2:00pm to 7:00pm CET)  
Email: ONlit–french@hibbertco.com  
English Phone: (+1) 303–308–7142 (Mon–Fri 12:00pm to 5:00pm GMT)  
Email: ONlit@hibbertco.com  
Email: r14525@onsemi.com  
ON Semiconductor Website: http://onsemi.com  
EUROPEAN TOLL–FREE ACCESS*: 00–800–4422–3781  
For additional information, please contact your local  
Sales Representative.  
*Available from Germany, France, Italy, UK, Ireland  
CS7054/D  
配单直通车
CS7054YDWR16产品参数
型号:CS7054YDWR16
生命周期:Transferred
IHS 制造商:CHERRY SEMICONDUCTOR CORP
包装说明:0.300 INCH, SO-16
Reach Compliance Code:unknown
风险等级:5.75
Is Samacsys:N
接口集成电路类型:BUFFER OR INVERTER BASED MOSFET DRIVER
JESD-30 代码:R-PDSO-G16
功能数量:1
端子数量:16
最高工作温度:125 °C
最低工作温度:-40 °C
封装主体材料:PLASTIC/EPOXY
封装形状:RECTANGULAR
封装形式:SMALL OUTLINE
认证状态:Not Qualified
表面贴装:YES
温度等级:AUTOMOTIVE
端子形式:GULL WING
端子位置:DUAL
Base Number Matches:1
  •  
  • 供货商
  • 型号 *
  • 数量*
  • 厂商
  • 封装
  • 批号
  • 交易说明
  • 询价
批量询价选中的记录已选中0条,每次最多15条。
 复制成功!