数据搜索系统,热门电子元器件搜索
  Chinese  ▼
ALLDATASHEETCN.COM

X  

VIPER53SP 数据表(PDF) 16 Page - STMicroelectronics

部件名 VIPER53SP
功能描述  OFF LINE PRIMARY SWITCH
PDF  24 Pages
Scroll/Zoom Zoom In 100%  Zoom Out
制造商  STMICROELECTRONICS [STMicroelectronics]
网页  http://www.st.com
标志 STMICROELECTRONICS - STMicroelectronics

VIPER53SP 数据表(HTML) 16 Page - STMicroelectronics

Back Button VIPER53SP Datasheet HTML 12Page - STMicroelectronics VIPER53SP Datasheet HTML 13Page - STMicroelectronics VIPER53SP Datasheet HTML 14Page - STMicroelectronics VIPER53SP Datasheet HTML 15Page - STMicroelectronics VIPER53SP Datasheet HTML 16Page - STMicroelectronics VIPER53SP Datasheet HTML 17Page - STMicroelectronics VIPER53SP Datasheet HTML 18Page - STMicroelectronics VIPER53SP Datasheet HTML 19Page - STMicroelectronics VIPER53SP Datasheet HTML 20Page - STMicroelectronics Next Button
Zoom Inzoom in Zoom Outzoom out
 16 / 24 page
background image
VIPer53DIP / VIPer53SP
16/24
charging current is reduced down to IDDch2 which
is about 0.6 mA. This lower current leads to a slope
change on the VDD rise. The device starts
switching for a VDD equal to VDDon, and the
auxiliary winding delivers some energy to the VDD
capacitor after the start-up time tss.
The charging current change at VDDoff allows a fast
complete start-up time tsu, and maintains a low
restart duty cycle. This is especially useful for short
circuits and overloads conditions, as described in
the following section.
SHORT-CIRCUIT AND OVERLOAD
PROTECTION
A VCOMPovl threshold of about 4.35 V has been
implemented on the COMP pin. When VCOMP goes
above this level, the capacitor connected on the
TOVL pin begins to charge. When reaching
typically 4 V (VOVLth), the internal mosfet driver is
disabled and the device stops switching. This state
is latched thanks to the regulation loop which
maintains the COMP pin voltage above the
VCOMPovl threshold. Since the VDD pin doesn’t
receive any more energy from the auxiliary
winding, its voltage drops down until it reaches
VDDoff and the device is reset, recharging the
VDD capacitor for a new restart cycle. Note that if
VCOMP drops down below the VCOMPovl threshold
for any reason during the VDD drop, the device
resumes switching immediately.
The device enters an endless restart sequence if
the
overload
or
short
circuit
condition
is
maintained. The restart duty cycle DRST is defined
as the time ratio for which the device tries to
restart, thus delivering its full power capability to
the output. In order to keep the whole converter in
a safe state during this event, DRST must be kept
as low as possible, without compromising the real
start up of the converter. A typical value of about
10 % is generally sufficient. For this purpose, both
VDD and TOVL capacitors can be used to satisfy
the following conditions:
Refer to the previous start-up section for the
definition of tss, and CVDD must also be checked
against the limit given in this section. The
maximum value of the two calculus will be
adopted.
All this behavior can be observed on figure 4. In
Figure 8 the value of the drain current Id for
VCOMP=VCOMPovl is shown. The corresponding
parameter IDmax is the drain current to take into
account
for
design
purpose.
Since
IDmax
represents the maximum value for which the
overload protection is not triggered, it defines the
power capability of the power supply.
TRANSCONDUCTANCE ERROR AMPLIFIER
The VIPer53 includes a transconductance error
amplifier. Transconductance Gm is the change in
output current ICOMP versus change in input
voltage VDD. Thus:
The output impedance ZCOMP at the output of this
amplifier (COMP pin) can be defined as:
This last equation shows that the open loop gain
AVOL can be related to Gm and ZCOMP:
where Gm value for VIPer53 is typically 1.4 mA/V.
Gm is well defined by specification, but ZCOMP and
therefore AVOL are subject to large tolerances. An
impedance Z must be connected between the
COMP pin and ground in order to define accurately
the transfer function F of the error amplifier,
according to the following equation, very similar to
the one above:
The error amplifier frequency response is shown in
figure 10 for different values of a simple resistance
connected on the COMP pin. The unloaded
transconductance error amplifier shows an internal
ZCOMP of about 140 KΩ. More complex
impedances can be connected on the COMP pin to
achieve
different
compensation
methods.
A
capacitor provides an integrator function, thus
eliminating the DC static error, and a resistance in
series leads to a flat gain at higher frequency,
C
OV L
12.5 10
6
ts s
⋅⋅
>
C
VDD
810
4
1
D
RST
------------
1

 COVL IDDch2
V
DDhys t
----------------------------------
⋅⋅
>
Gm
V
DD
∂I
COMP
=
Z
COMP
I
COMP
∂V
COMP
1
Gm
---------
V
DD
∂V
COM P
==
A
VOL
Gm Z
COM P
=
Fs
()
Gm Z s
()
=
Figure 18: Typical Compensation Network
15V
VDD
OSC
DRAIN
SOURCE
COMP
TOVL
Rcomp
Ccomp
10nF



Html Pages

1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24


数据表 下载

Go To PDF Page


链接网址



ALLDATASHEET是否为您带来帮助?  [ DONATE ] 

关于 Alldatasheet   |   广告服务   |   联系我们   |   隐私政策   |   数据表链接    |   链接交换   |   制造商名单
All Rights Reserved©Alldatasheet.com


Mirror Sites
English : Alldatasheet.com  |   English : Alldatasheet.net  |   Chinese : Alldatasheetcn.com  |   German : Alldatasheetde.com  |   Japanese : Alldatasheet.jp
Russian : Alldatasheetru.com  |   Korean : Alldatasheet.co.kr  |   Spanish : Alldatasheet.es  |   French : Alldatasheet.fr  |   Italian : Alldatasheetit.com
Portuguese : Alldatasheetpt.com  |   Polish : Alldatasheet.pl  |   Vietnamese : Alldatasheet.vn
Indian : Alldatasheet.in  |   Mexican : Alldatasheet.com.mx  |   British : Alldatasheet.co.uk  |   New Zealand : Alldatasheet.co.nz
Family Site : ic2ic.com  |   icmetro.com