The CXSD62118 is a single-phase, constant-on-time,synchronous PWM controller, which drives N-channel MOSFETs. CXSD62118 steps down high voltage to generate low-voltage chipset or RAM supplies in no

发布时间:2020-04-06 09:43:38 浏览次数:701 作者:嘉泰姆 来源:1
摘要:The CXSD62118 is a single-phase, constant-on-time,synchronous PWM controller, which drives N-channel MOSFETs. CXSD62118 steps down high voltage to generate low-voltage chipset or RAM supplies in no

目录VnS嘉泰姆

1.产品概述                       2.产品特点
3.应用范围                       4.下载产品资料PDF文档 
5.产品封装图</span>                     6.电路原理图</span>                   
7.
功能概述
                        8.相关产品VnS嘉泰姆

,产品概述(General Description)   VnS嘉泰姆


  The CXSD62118 is a single-phase, constant-on-time,synchronous PWM controller, which drives N-channel MOSFETs. The CXSD62118 steps down high voltage to generate low-voltage chipset or RAM supplies in notebook computers.
  The CXSD62118 provides excellent transient response and accurate DC voltage output in either PFM or PWM Mode.In Pulse Frequency Mode (PFM), the CXSD62118 provides very high efficiency over light to heavy loads with loading-
modulated switching frequencies. In PWM Mode, the converter works nearly at constant frequency for low-noise requirements.
  The CXSD62118 is equipped with accurate positive current-limit, output under-voltage, and output over-voltage protections, perfect for NB applications. The Power-On-Reset function monitors the voltage on VCC to prevent wrong operation during power-on. The CXSD62118 has a 1ms digital soft-start and built-in an integrated output discharge method for soft-stop. An internal integrated
soft-start ramps up the output voltage with programmable slew rate to reduce the start-up current. A soft-stop function actively discharges the output capacitors with controlled reverse inductor current.
  The CXSD62118 is available in 10pin TDFN 3x3 package.

二</span>.产品特点(Features)VnS嘉泰姆


Adjustable Output Voltage from +0.7V to +5.5V
- 0.7V Reference Voltage
- ±1% Accuracy Over-Temperature
Operates from an Input Battery Voltage Range of
+1.8V to +28V
Power-On-Reset Monitoring on VCC Pin
Excellent Line and Load Transient Responses
PFM Mode for Increased Light Load Efficiency
Selectable PWM Frequency from 4 Preset Values
Integrated MOSFET Drivers
Integrated Bootstrap Forward P-CH MOSFET
Adjustable Integrated Soft-Start and Soft-Stop
Selectable Forced PWM or Automatic PFM/PWM Mode
Power Good Monitoring
70% Under-Voltage Protection
125% Over-Voltage Protection
Adjustable Current-Limit Protection
- Using Sense Low-Side MOSFET’s RDS(ON)
Over-Temperature Protection
TDFN-10 3x3 Package
Lead Free and Green Devices Available

三</span>,应用范围 (Applications)VnS嘉泰姆


Notebook
Table PC
Hand-Held Portable
AIO PC

四.下载产品资料PDF文档 VnS嘉泰姆


需要详细的PDF规格书请扫一扫微信联系我们,还可以获得免费样品以及技术支持</span>!</span>VnS嘉泰姆

 QQ截图20160419174301.jpgVnS嘉泰姆

五,产品封装图 (Package)VnS嘉泰姆


blob.pngVnS嘉泰姆

六.电路原理图</span>VnS嘉泰姆


blob.pngVnS嘉泰姆

七</span>,功能概述VnS嘉泰姆


Input Capacitor Selection (Cont.)
higher than the maximum input voltage. The maximum RMS current rating requirement is approximatelyVnS嘉泰姆

 IOUT/2,where IOUT is the load current. During power-up, the input capacitors have to handle great VnS嘉泰姆

amount of surge current.For low-duty notebook appliactions, ceramic capacitor is recommended. TheVnS嘉泰姆

 capacitors must be connected be-tween the drain of high-side MOSFET and the source of low-side VnS嘉泰姆

MOSFET with very low-impeadance PCB layout
MOSFET Selection
The application for a notebook battery with a maximum voltage of 24V, at least a minimum 30V MOSFETsVnS嘉泰姆

 should be used. The design has to trade off the gate charge with the RDS(ON) of the MOSFET:
For the low-side MOSFET, before it is turned on, the body diode has been conducting. The low-side MOSFETVnS嘉泰姆

 driver will not charge the miller capacitor of this MOSFET.In the turning off process of the low-side MOSFET,VnS嘉泰姆

 the load current will shift to the body diode first. The high dv/dt of the phase node voltage will charge the VnS嘉泰姆

miller capaci-tor through the low-side MOSFET driver sinking current path. This results in much less switchingVnS嘉泰姆

 loss of the low-side MOSFETs. The duty cycle is often very small in high battery voltage applications, and the VnS嘉泰姆

low-side MOSFET will conduct most of the switching cycle; therefore, when using smaller RDS(ON) of the low-side MOSFET, the con-verter can reduce power loss. The gate charge for this MOSFET is usually the VnS嘉泰姆

secondary consideration. The high-side MOSFET does not have this zero voltage switch- ing condition;VnS嘉泰姆

 in addition, because  it conducts for less time compared to the low-side MOSFET, the switching VnS嘉泰姆

loss tends to be dominant. Priority  should be given to the MOSFETs with less gate charge, so VnS嘉泰姆

that both the gate driver loss and switching loss  will be minimized.VnS嘉泰姆

The selection of the N-channel power MOSFETs are determined by the R DS(ON), reversingVnS嘉泰姆

 transfer capaci-tance (CRSS) and maximum output current requirement. The losses in the VnS嘉泰姆

MOSFETs have two components:conduction loss and transition loss. For the high-side and VnS嘉泰姆

low-side MOSFETs, the losses are approximately given by the following equations:VnS嘉泰姆

Phigh-side = IOUT (1+ TC)(RDS(ON))D + (0.5)( IOUT)(VIN)( tSW)FSW
Plow-side = IOUT (1+ TC)(RDS(ON))(1-D)
Where I is the load current OUT
TC is the temperature dependency of RDS(ON)
FSW is the switching frequency
tSW is the switching interval
D is the duty cycle
Note that both MOSFETs have conduction losses while the high-side MOSFET includes an additional VnS嘉泰姆

transition loss.The switching interval, tSW, is the function of the reverse transfer capacitance CRSS. VnS嘉泰姆

The (1+TC) term is a factor in the temperature dependency of the RDS(ON) and can be extracted VnS嘉泰姆

from the “RDS(ON) vs. Temperature” curve of the power MOSFET.
Layout Consideration
In any high switching frequency converter, a correct layout is important to ensure proper operation VnS嘉泰姆

of the regulator.With power devices switching at higher frequency, the resulting current transient will VnS嘉泰姆

cause voltage spike across the interconnecting impedance and parasitic circuit elements. As an example,VnS嘉泰姆

 consider the turn-off transition of the PWM MOSFET. Before turn-off condition, the MOSFET is carryingVnS嘉泰姆

 the full load current. During turn-off,current stops flowing in the MOSFET and is freewheeling by the VnS嘉泰姆

low side MOSFET and parasitic diode. Any parasitic inductance of the circuit generates a large voltage VnS嘉泰姆

spike during the switching interval. In general, using short and wide printed circuit traces shouldVnS嘉泰姆

 minimize interconnect-ing impedances and the magnitude of voltage spike.
Besides, signal and power grounds are to be kept sepa-rating and finally combined using ground VnS嘉泰姆

plane construc-tion or single point grounding. The best tie-point between the signal ground and the VnS嘉泰姆

power ground is at the nega-tive side of the output capacitor on each channel, where there is less VnS嘉泰姆

noise. Noisy traces beneath the IC are not recommended. Below is a checklist for your layout:
· Keep the switching nodes (UGATE, LGATE, BOOT,and PHASE) away from sensitive small signal VnS嘉泰姆

nodes since these nodes are fast moving signals.Therefore, keep traces to these nodes as short as
possible and there should be no other weak signal traces in parallel with theses traces on any layer.
VnS嘉泰姆

Layout Consideration (Cont.)
· The signals going through theses traces have both high dv/dt and high di/dt with high peak VnS嘉泰姆

charging and discharging current. The traces from the gate drivers to the MOSFETs (UGATE and VnS嘉泰姆

LGATE) should be short and wide.
· Place the source of the high-side MOSFET and the drain of the low-side MOSFET as close as VnS嘉泰姆

possible.Minimizing the impedance with wide layout plane be-tween the two pads reduces the VnS嘉泰姆

voltage bounce of the node. In addition, the large layout plane between the drain of the VnS嘉泰姆

MOSFETs (VIN and PHASE nodes) can get better heat sinking.VnS嘉泰姆

The GND is the current sensing circuit reference ground and also the power ground of the VnS嘉泰姆

LGATE low-side MOSFET. On the other hand, the GND trace should be a separate trace andVnS嘉泰姆

 independently go to the source of the low-side MOSFET. Besides, the cur-rent sense resistor VnS嘉泰姆

should be close to OCSET pin to avoid parasitic capacitor effect and noise coupling.VnS嘉泰姆

· Decoupling capacitors, the resistor-divider, and boot capacitor should be close to their pins. VnS嘉泰姆

(For example,place the decoupling ceramic capacitor close to the drain of the high-side MOSFETVnS嘉泰姆

 as close as possible.)
· The input bulk capacitors should be close to the drain of the high-side MOSFET, and the outputVnS嘉泰姆

 bulk capaci-tors should be close to the loads. The input capaci-tor’s ground should be close to theVnS嘉泰姆

 grounds of the output capacitors and low-side MOSFET.
· Locate the resistor-divider close to the FB pin to mini-mize the high impedance trace. In addition, VnS嘉泰姆

FB pin traces can’t be close to the switching signal traces (UGATE, LGATE, BOOT, and PHASE).VnS嘉泰姆

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1200VnS嘉泰姆

CXSD6297VnS嘉泰姆

TDFN3x3-10VnS嘉泰姆

VMVnS嘉泰姆

1VnS嘉泰姆

1VnS嘉泰姆

25VnS嘉泰姆

4VnS嘉泰姆

13.2VnS嘉泰姆

0.8VnS嘉泰姆

5~12VnS嘉泰姆

2000VnS嘉泰姆

CXSD6298VnS嘉泰姆

TDFN3x3-10VnS嘉泰姆

COTVnS嘉泰姆

1VnS嘉泰姆

1VnS嘉泰姆

25VnS嘉泰姆

4.5VnS嘉泰姆

25VnS嘉泰姆

0.6VnS嘉泰姆

5~12VnS嘉泰姆

80VnS嘉泰姆

CXSD6299|AVnS嘉泰姆

SOP-8PVnS嘉泰姆

VMVnS嘉泰姆

1VnS嘉泰姆

1VnS嘉泰姆

25VnS嘉泰姆

4.5VnS嘉泰姆

13.2VnS嘉泰姆

0.8VnS嘉泰姆

5~12VnS嘉泰姆

16000VnS嘉泰姆

CXSD62100VnS嘉泰姆

TQFN3x3-10VnS嘉泰姆

VMVnS嘉泰姆

1VnS嘉泰姆

1VnS嘉泰姆

25VnS嘉泰姆

4.5VnS嘉泰姆

13.2VnS嘉泰姆

0.6VnS嘉泰姆

5~12VnS嘉泰姆

2500VnS嘉泰姆

CXSD62101|LVnS嘉泰姆

TDFN3x3-10VnS嘉泰姆

COTVnS嘉泰姆

1VnS嘉泰姆

1VnS嘉泰姆

30VnS嘉泰姆

3VnS嘉泰姆

25VnS嘉泰姆

0.8VnS嘉泰姆

5~12VnS嘉泰姆

2000VnS嘉泰姆

CXSD62102VnS嘉泰姆

TQFN3x3-16VnS嘉泰姆

COTVnS嘉泰姆

1VnS嘉泰姆

1VnS嘉泰姆

30VnS嘉泰姆

1.8VnS嘉泰姆

28VnS嘉泰姆

0.6VnS嘉泰姆

5VnS嘉泰姆

600VnS嘉泰姆

CXSD62102AVnS嘉泰姆

TQFN 3x3 16VnS嘉泰姆

COTVnS嘉泰姆

1VnS嘉泰姆

1VnS嘉泰姆

30VnS嘉泰姆

1.8VnS嘉泰姆

28VnS嘉泰姆

0.6VnS嘉泰姆

5VnS嘉泰姆

600VnS嘉泰姆

CXSD62103VnS嘉泰姆

QFN4x4-24VnS嘉泰姆

VMVnS嘉泰姆

2VnS嘉泰姆

1VnS嘉泰姆

50VnS嘉泰姆

4.5VnS嘉泰姆

13.2VnS嘉泰姆

0.6VnS嘉泰姆

5~12VnS嘉泰姆

5000VnS嘉泰姆

CXSD62104VnS嘉泰姆

TQFN4x4-24VnS嘉泰姆

COTVnS嘉泰姆

1VnS嘉泰姆

2VnS嘉泰姆

15VnS嘉泰姆

6VnS嘉泰姆

25VnS嘉泰姆

2VnS嘉泰姆

NVnS嘉泰姆

550VnS嘉泰姆

CXSD62105VnS嘉泰姆

TQFN4x4-24VnS嘉泰姆

COTVnS嘉泰姆

1VnS嘉泰姆

2VnS嘉泰姆

15VnS嘉泰姆

6VnS嘉泰姆

25VnS嘉泰姆

2VnS嘉泰姆

NVnS嘉泰姆

550VnS嘉泰姆

CXSD62106|AVnS嘉泰姆

TQFN4x4-4VnS嘉泰姆

TQFN3x3-20VnS嘉泰姆

COTVnS嘉泰姆

1VnS嘉泰姆

2VnS嘉泰姆

20VnS嘉泰姆

3VnS嘉泰姆

28VnS嘉泰姆

0.75VnS嘉泰姆

5VnS嘉泰姆

800VnS嘉泰姆

CXSD62107VnS嘉泰姆

TQFN3x3-16VnS嘉泰姆

COTVnS嘉泰姆

1VnS嘉泰姆

1VnS嘉泰姆

20VnS嘉泰姆

1.8VnS嘉泰姆

28VnS嘉泰姆

0.75VnS嘉泰姆

5VnS嘉泰姆

400VnS嘉泰姆

CXSD62108VnS嘉泰姆

QFN3.5x3.5-14VnS嘉泰姆

TQFN3x3-16VnS嘉泰姆

COTVnS嘉泰姆

1VnS嘉泰姆

1VnS嘉泰姆

20VnS嘉泰姆

1.8VnS嘉泰姆

28VnS嘉泰姆

0.75VnS嘉泰姆

5VnS嘉泰姆

400VnS嘉泰姆

CXSD62109VnS嘉泰姆

TQFN3x3-16VnS嘉泰姆

COTVnS嘉泰姆

1VnS嘉泰姆

2VnS嘉泰姆

20VnS嘉泰姆

1.8VnS嘉泰姆

28VnS嘉泰姆

0.75VnS嘉泰姆

5VnS嘉泰姆

400VnS嘉泰姆

CXSD62110VnS嘉泰姆

QFN3x3-20VnS嘉泰姆

TQFN3x3-16VnS嘉泰姆

COTVnS嘉泰姆

1VnS嘉泰姆

2VnS嘉泰姆

20VnS嘉泰姆

3VnS嘉泰姆

28VnS嘉泰姆

1.8|1.5|0.5VnS嘉泰姆

5VnS嘉泰姆

740VnS嘉泰姆

CXSD62111VnS嘉泰姆

TQFN4x4-24VnS嘉泰姆

|QFN3x3-20VnS嘉泰姆

CMVnS嘉泰姆

1VnS嘉泰姆

2VnS嘉泰姆

15VnS嘉泰姆

5VnS嘉泰姆

28VnS嘉泰姆

0.5VnS嘉泰姆

NVnS嘉泰姆

3000VnS嘉泰姆

CXSD62112VnS嘉泰姆

TDFN3x3-10VnS嘉泰姆

COTVnS嘉泰姆

1VnS嘉泰姆

1VnS嘉泰姆

20VnS嘉泰姆

1.8VnS嘉泰姆

28VnS嘉泰姆

0.5VnS嘉泰姆

5VnS嘉泰姆

250VnS嘉泰姆

CXSD62113|CVnS嘉泰姆

TQFN3x3-20VnS嘉泰姆

COTVnS嘉泰姆

1VnS嘉泰姆

2VnS嘉泰姆

15VnS嘉泰姆

6VnS嘉泰姆

25VnS嘉泰姆

2VnS嘉泰姆

NVnS嘉泰姆

550VnS嘉泰姆

CXSD62113EVnS嘉泰姆

TQFN 3x3 20VnS嘉泰姆

COTVnS嘉泰姆

2VnS嘉泰姆

2VnS嘉泰姆

11VnS嘉泰姆

6VnS嘉泰姆

25VnS嘉泰姆

2VnS嘉泰姆

NVnS嘉泰姆

550VnS嘉泰姆

CXSD62114VnS嘉泰姆

TQFN3x3-20VnS嘉泰姆

COTVnS嘉泰姆

2VnS嘉泰姆

2VnS嘉泰姆

11VnS嘉泰姆

5.5VnS嘉泰姆

25VnS嘉泰姆

2VnS嘉泰姆

NVnS嘉泰姆

280VnS嘉泰姆

CXSD62115VnS嘉泰姆

QFN4x4-24VnS嘉泰姆

VMVnS嘉泰姆

2VnS嘉泰姆

1VnS嘉泰姆

60VnS嘉泰姆

3.1VnS嘉泰姆

13.2VnS嘉泰姆

0.85VnS嘉泰姆

12VnS嘉泰姆

5000VnS嘉泰姆

CXSD62116A|B|CVnS嘉泰姆

SOP-8PVnS嘉泰姆

VMVnS嘉泰姆

1VnS嘉泰姆

1VnS嘉泰姆

20VnS嘉泰姆

2.9VnS嘉泰姆

13.2VnS嘉泰姆

0.8VnS嘉泰姆

12VnS嘉泰姆

16000VnS嘉泰姆

CXSD62117VnS嘉泰姆

SOP-20VnS嘉泰姆

VMVnS嘉泰姆

2VnS嘉泰姆

2VnS嘉泰姆

30VnS嘉泰姆

10VnS嘉泰姆

13.2VnS嘉泰姆

1VnS嘉泰姆

12VnS嘉泰姆

5000VnS嘉泰姆

CXSD62118VnS嘉泰姆

TDFN3x3-10VnS嘉泰姆

COTVnS嘉泰姆

1VnS嘉泰姆

1VnS嘉泰姆

25VnS嘉泰姆

1.8VnS嘉泰姆

28VnS嘉泰姆

0.7VnS嘉泰姆

5VnS嘉泰姆

250VnS嘉泰姆

CXSD62119VnS嘉泰姆

TQFN3x3-20VnS嘉泰姆

COTVnS嘉泰姆

2VnS嘉泰姆

1VnS嘉泰姆

40VnS嘉泰姆

1.8VnS嘉泰姆

25VnS嘉泰姆

REFIN SettingVnS嘉泰姆

5VnS嘉泰姆

700VnS嘉泰姆

CXSD62120VnS嘉泰姆

QFN 3x3 20VnS嘉泰姆

TQFN 3x3 16VnS嘉泰姆

COTVnS嘉泰姆

1VnS嘉泰姆

2VnS嘉泰姆

20VnS嘉泰姆

3VnS嘉泰姆

28VnS嘉泰姆

1.8|1.5 1.35|1.2 0.5VnS嘉泰姆

5VnS嘉泰姆

800VnS嘉泰姆

CXSD62121AVnS嘉泰姆

TQFN3x3 20VnS嘉泰姆

COTVnS嘉泰姆

1VnS嘉泰姆

2VnS嘉泰姆

15VnS嘉泰姆

3VnS嘉泰姆

28VnS嘉泰姆

0.75VnS嘉泰姆

5VnS嘉泰姆

220VnS嘉泰姆

CXSD62121BVnS嘉泰姆

TQFN3x3 20VnS嘉泰姆

COTVnS嘉泰姆

1VnS嘉泰姆

2VnS嘉泰姆

15VnS嘉泰姆

3VnS嘉泰姆

28VnS嘉泰姆

0.75VnS嘉泰姆

5VnS嘉泰姆

220VnS嘉泰姆

CXSD62121VnS嘉泰姆

TQFN3x3-20VnS嘉泰姆

COTVnS嘉泰姆

1VnS嘉泰姆

2VnS嘉泰姆

20VnS嘉泰姆

3VnS嘉泰姆

28VnS嘉泰姆

0.75VnS嘉泰姆

5VnS嘉泰姆

180VnS嘉泰姆


VnS嘉泰姆


VnS嘉泰姆


VnS嘉泰姆

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