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ADL8106ACEZ-R7 Folha de dados(PDF) 23 Page - Analog Devices

Nome de Peças ADL8106ACEZ-R7
Descrição Electrónicos  GaAs, pHEMT, Low Noise Amplifier, 18 GHz to 54 GHz
PDF  26 Pages
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Fabricante Electrônico  AD [Analog Devices]
Página de início  http://www.analog.com
Logo AD - Analog Devices

ADL8106ACEZ-R7 Folha de dados(HTML) 23 Page - Analog Devices

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Data Sheet
ADL8106
APPLICATIONS INFORMATION
analog.com
Rev. 0 | 23 of 26
Figure 88 shows the basic connections for operating the ADL8106,
and the configuration used to characterize and qualify the device.
The RFIN and RFOUT pins are internally ac-coupled. However, if
the dc bias level of the input signal is not equal to 0 V, externally
ac-couple the RFIN pin. Likewise, if the RFOUT pin is driving an
input with a bias level other than 0 V, externally ac-couple this pin.
Because VDD1, VDD2 and VGG1 are internally decoupled, no
external decoupling components are required on these pins.
VGG1 sets the drain current of the amplifier (VGG1 ~ −0.65 V for
an IDQ of 120 mA). VDD1 and VDD2 provide the drain current (3 V
nominal) with equal currents on each pin.
To avoid damaging the device, set VGG1 before VDD1 and VDD2
are applied. Set VGG1 to −2 V before turning on VDD1 and
VDD2. VGG1 can then be adjusted upwards until the desired IDQ
is achieved. Then, apply the RF input signal. If the desired gate
voltage is known, VGG1 can be set to that voltage value directly
without taking it to the pinch off voltage (−2 V).
To turn off the device, turn off the RF input signal, turn off VDD1
and VDD2 and then turn off VGG1.
See the ADL8106-EVALZ user guide for information on using the
evaluation board.
Figure 88. Basic Connections
BIASING THE ADL8106 WITH THE HMC920
The HMC920 is designed to provide active bias control for depletion
mode amplifiers, such as the ADL8106. The HMC920 measures
and regulates drain current to compensate for temperature changes
and part to part variations in the drain current to gate voltage
relationship. Additionally, the HMC920 properly sequences gate
and drain voltages to ensure safe on and off operation and offers
circuit self protection in the event of a short circuit. The active
bias controller contains an internal charge pump that generates the
negative voltage needed to drive the VGG1 pin on the ADL8106.
Alternatively, an external negative voltage can be provided.
For more information regarding the use of the HMC920, refer to the
HMC920 data sheet and the AN-1363 Application Note.
Application Circuit Setup
Figure 89 shows the application circuit for bias control of the
ADL8106 using the HMC920. The HMC920 drain current is meas-
ured and the VGATE output voltage adjusts until the set point drain
current is achieved. The various external component values around
the HMC920 are calculated as follows.
The target drain current must first be determined and set. This
current must be set based on the maximum drain current that is
expected to be required during operation, including when the device
is generating the maximum expected output power. This current
is set by the resistor connected between the ISENSE pin on the
HMC920 (Pin 25) and ground using the following equation:
IDRAIN (A) = 166/RSENSE + 0.0135
To ensure adequate headroom, the supply voltage for the HMC920
must be set higher than the target drain voltage to the ADL8106 (3
V). Accordingly, the supply voltage to HMC920 is set to 5 V.
The voltage on the LDOCC pin (Pin 29) on the HMC920 drives the
VDRAIN pins which in turn drive the VDDx pins of the ADL8106.
Because the LDOCC output is connected to the VDRAIN output
through an internal metal-oxide semiconductor field effect transistor
(MOSFET) switch with an on resistance of 0.5 Ω, the LDOCC
voltage must be set slightly higher than the target drain voltage to
the ADL8106. To determine the required LDOCC voltage, use the
following equation:
VLDOCC = VDRAIN + IDRAIN × 0.5
Therefore, VLDOCC = 3 V + (0.14 × 0.5) = 3.07 V.
To set VLDOCC to 3.07 V, use the following equation with R5 set to
10 kΩ:
R8 = (R5/2) × (VLDOCC − 2)
Therefore, R8 = (10000/2) × (3.07 – 2) = 5.350 kΩ (choose 5.36 kΩ
standard value).



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