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TNETEL1400 Datasheet(PDF) 9 Page - Texas Instruments

No. de pieza TNETEL1400
Descripción Electrónicos  EtherLoopE TRANSCEIVER
PDF  15 Pages
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Fabricante Electrónico  TI [Texas Instruments]
Página de inicio  http://www.ti.com
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TNETEL1400 Datasheet(HTML) 9 Page - Texas Instruments

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TNETEL1400
EtherLoop
™ TRANSCEIVER
SPHS004A – FEBRUARY 1999 – REVISED MARCH 1999
9
POST OFFICE BOX 655303
DALLAS, TEXAS 75265
transmitter (see Figure 5) (continued)
PARAMETER
TEST CONDITIONS
MIN
TYP†
MAX
UNIT
Irms(TXOP)–
Irms(TXON)
TX output
current balance
VCC = 5 V, RL = 110 Ω,
RX_TERM = 0, TX_EN = 1,
V(TXINP) = 1.2 VPP sinusoid at f = 500 kHz
(see Note 1)
TXGAIN = 0000,
RXGAIN = 0XX
–5
5
mA
TX output stability
Source impedance
≤ 50 Ω,
Supply impedance
≤ 10 Ω,
Zloads: voltage standing-wave ratio (VSWR) 4:1
and open circuit
TXGAIN = 0000,
RXGAIN = 0XX
TX supply current
VOUT = 0,
TXGAIN = 0000
35
45
mA
TX supply current
VOUT = MAX,
TXGAIN = 0000
120
mA
TX output return loss
TXGAIN = 0000, RXGAIN = 0XX
18
dB
TX power-up time
TXGAIN = 0000, RXGAIN = 0XX (see Note 2)
100
µs
† All typical values are at VCC = 5 V, TA = 25°C (unless otherwise noted).
NOTES:
1. While the RX circuit is disabled during transmission, it is still connected and, therefore, must withstand the signal levels placed at
its input terminals.
2. The power-up/power-down time is the time it takes for the signal path to completely settle and meet all the transmission specifications
after TXGAIN and RXGAIN are set to power-up condition or switched from one gain setting to another. This time consists of slewing
and exponential settling of bias and AC coupling capacitors and, therefore, the values of these components must be as shown in
the application diagram, Figure 4.
receiver (see Figures 6 and 7)
PARAMETER
TEST CONDITIONS
MIN
TYP†
MAX
UNIT
RL =2kΩ CL =20 pF 30kHz<f<275 MHz
RXGAIN = 11
691
RX idle channel noise
RL = 2 kΩ, CL = 20 F, 30 kHz < f < 2.75 MHz,
RX_TERM = 1, TX_EN = 0,
RXGAIN = 10
478
µV
RX idle channel noise
_
,
_
,
V(RXIP – RXIN) = 0.04 VPP sinusoid at f = 500 kHz
(N t 3)
RXGAIN = 01
266
µ
RMS
(see Note 3)
RXGAIN = 00
160
RXGAIN = 11
24
30
31
RX gain accuracy
VCC = 5 V, RL = 2 kΩ, CL = 20 pF,
30 kHz<f<2 75 MHz RX TERM
1 TX EN
0
RXGAIN = 10
23
24
25
dB
RX gain accuracy
30 kHz < f < 2.75 MHz, RX_TERM = 1, TX_EN = 0,
V(RXIP – RXIN) = 0.04 VPP sinusoid at f = 500 kHz
RXGAIN = 01
11
12
13
dB
V(RXIP – RXIN) = 0.04 VPP sinusoid at f = 500 kHz
RXGAIN = 00
–1
0
1
RX gain over frequency
(WRT gain at 500 kHz)
RL = 2 kΩ, CL = 20 pF, 30 kHz < f < 2.75 MHz,
30 kHz < f < 2.5 MHz monotically decreasing
for f > 3 MHz, TX_EN = 0,
V(RXIP – RXIN) = 0.04 VPP sinusoid at f = 500 kHz
RX_TERM = 1,
RXGAIN = 111
–1
1
dB
RX power-supply
rejection
(WRT VCC only)
RL = 2 kΩ, CL = 20 pF, dc < f < 3 MHz, TX_EN = 0,
V(RXIP – RXIN) = 0.04 VPP sinusoid at f = 500 kHz
RX_TERM = 1,
RXGAIN = 111
0.03
V/V
RX common-mode
rejection
RL = 2 kΩ, CL = 20 pF, TX_EN = 0, V(RXIN) = 1.5 VPP,
V(RXIP – RXIN) = 0.04 VPP sinusoid at f = 500 kHz
RX_TERM = 1,
RXGAIN = 111
30
dB
RX IIP3 intercept
RL = 2 kΩ, CL = 20 pF, TX_EN = 0,
V(RXIP – RXIN) = 0.04 VPP sinusoid at f = 500 kHz
(see Note 4)
RX_TERM = 1,
RXGAIN = 111
17
dBm
† All typical values are at VCC = 5 V, TA = 25°C (unless otherwise noted).
NOTES:
3. Idle channel noise is the noise (Vrms) measured at RXOUT with no signal at RXIN. This voltage is integrated over the 30-KHz to
2.75-MHz band. This specification is in place of the original noise-figure specification, and is correlated to NF with laboratory
measurements.
4. The two tones used for this test are at 1.39 MHz and 1.58 MHz, and the in-band IIP3 products are at 1.2 MHz and 1.77 MHz. The
IIP3 intercept point is the output power level, where the power of the harmonics equals that of the signal frequencies. This point is
an intersection of two straight lines extrapolated from two low-power measurements.



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