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All Sensors DS-0300 Rev A
The DLVR Series Mini Digital Output Sensor is based on All Sensors’ CoBeam2 TM Technology. This reduces package stress
susceptibility, resulting in improved overall long term stability. The technology also vastly improves position sensitivity
compared to single die devices.
The supply voltage options ease integration of the sensors into a wide range of process control and measurement sys-
tems, allowing direct connection to serial communications channels. For battery-powered systems, the sensors can enter
very low-power modes between readings to minimize load on the power supply.
These calibrated and compensated sensors provide accurate, stable output over a wide temperature range. This series
is intended for use with non-corrosive, non-ionic working uids such as air, dry gases and the like. A protective parylene
coating is optionally available for moisture/harsh media protection.
• 1 to 60 inH2O Pressure Ranges
• 3.3V Supply Voltage Standard / 5V Option
• I2C Standard Interface / SPI Interface Option
• Better than 1.0% Accuracy Over Temperature Typical
• Medical Breathing
• Environmental Controls
• HVAC
• Industrial Controls
• Portable/Hand-Held Equipment
General Description
Applications
Features
DLVR Series Low Voltage Digital Pressure Sensors
Pressure Sensor Maximum Ratings Environmental Specications
Device Operating Range Proof Pressure Burst Pressure Nominal Span
DLVR-L01D ±1 inH2O 100 inH2O 300 inH2O ±6,553 counts
DLVR-L02D ±2 inH2O 100 inH2O 300 inH2O ±6,553 counts
DLVR-L05D ±5 inH2O 200 inH2O 300 inH2O ±6,553 counts
DLVR-L10D ±10 inH2O 200 inH2O 300 inH2O ±6,553 counts
DLVR-L30D ±30 inH2O 200 inH2O 500 inH2O ±6,553 counts
DLVR-L60D ±60 inH2O 200 inH2O 800 inH2O ±6,553 counts
DLVR-L01G 0 to 1 inH2O 100 inH2O 300 inH2O 13,107 counts
DLVR-L02G 0 to 2 inH2O 100 inH2O 300 inH2O 13,107 counts
DLVR-L05G 0 to 5 inH2O 200 inH2O 300 inH2O 13,107 counts
DLVR-L10G 0 to 10 inH2O 200 inH2O 300 inH2O 13,107 counts
DLVR-L30G 0 to 30 inH2O 200 inH2O 500 inH2O 13,107 counts
DLVR-L60G 0 to 60 inH2O 200 inH2O 800 inH2O 13,107 counts
Supply Voltage (Vs) 6 Vdc
Common Mode Pressure 10 psig
Lead Temperature (soldering 2-4 sec.) 270 °C
Temperature Ranges
Compensated: Commercial 0°C to 70°C
Industrial -20°C to 85°C
Operating -25°C to 85 °C
Storage -40°C to 125 °C
Humidity Limits (non condensing) 0 to 95% RH
Standard Pressure Ranges Equivalent Circuit
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I2C
Vs
Gnd
SCL
SDA
INT
SPI
Option
Vs
Gnd
SCLK
MISO
SS
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Parameter Min Typ Max Units Notes
Output Span 1
LxxD - ±6,553 - Dec count
LxxG - 13,107 - Dec count
Oset Output @ Zero Di. Pressure -
LxxD - 8,192 - Dec count
LxxG - 1,638 - Dec count
Total Error Band 2
L01x, L02x - ±1.5 ±2.0 %FSS
L05x, L10x, L30x, L60x - ±1.0 ±1.5 %FSS
Span Temperature Shift 3
L01x, L02x - ±0.5 - %FSS
L05x, L10x, L30x, L60x - ±0.2 - %FSS
Oset Temperature Shift 3
L01x, L02x - ±0.5 - %FSS
L05x, L10x, L30x, L60x - ±0.2 - %FSS
Oset Warm-up Shift 4
L01x, L02x - ±0.25 - %FSS
L05x, L10x, L30x, L60x - ±0.15 - %FSS
Oset Position Sensitivity (±1g) -
L01x, L02x - ±0.10 - %FSS
L05x, L10x, L30x, L60x - ±0.05 - %FSS
Oset Long Term Drift (One Year) -
L01x, L02x - ±0.25 - %FSS
L05x, L10x, L30x, L60x - ±0.15 - %FSS
Linearity, Hysteresis Error 6
LxxD - ±0.25 - %FSS
LxxG - ±0.10 - %FSS
Response Delay 5
Sleep - Wake Pressure - 0.40 0.50 ms
Sleep - Wake All - 1.10 1.40 ms
Update Rate 5
Fast - 0.40 1.0 ms
Noise Reduced - 1.30 3.1 ms
Low Power - 6.5 9.5 ms
Digital Resolution -
Output Resolution - 14 - bit
No Missing Codes 12 13 - bit
Temperature Output 7
Resolution - 11 - bit
Overall Accuracy - 2 - °C
Current Requirement (3.3V Option) 5
Fast - 3.5 4.3 mA
Noise Reduced - 3.6 4.5 mA
Low Power - 0.72 0.90 mA
Sleep (Idle) - 0.5 5.0 uA
Current Requirement (5.0 Option) 5
Fast - 5.0 6.0 mA
Noise Reduced - 5.2 6.2 mA
Low Power - 1.1 1.3 mA
Sleep (Idle) - 0.5 5.0 uA
Performance Characteristics for DLVR Series - Commercial and Industrial Temperature Range
All pArAmeters Are meAsured At 3.3V ±5% or 5.0V ±5% (depending on selected VoltAge option) excitAtion And room temperAture unless otherwise specified.
pressure meAsurements Are with positiVe pressure Applied to port B.
See following page for performance characteristics table notes
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All Sensors DS-0300 Rev A
Specication Notes
note 1: the spAn is the AlgeBrAic difference Between full scAle decimAl counts And the offset decimAl counts.
note 2: totAl error BAnd comprises of offset And spAn temperAture And cAliBrAtion errors, lineAritY And pressure hYsterisis errors, offset wArm-up shift,
offset position sensitiVitY And long term offset drift errors.
note 3: shift is relAtiVe to 25c.
note 4: shift is within the first hour of excitAtion Applied to the deVice.
note 5: pArAmeter is chArActeriZed And not 100% tested.
note 6: meAsured At one-hAlf full scAle rAted pressure using BesY stAright line curVe fit.
note 7: temperAture output conVersion function:
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Parameter Symbol Min Typ Max Units
Input High Level - 80.0 - 100 % of Vs
Input Low Level - 0 - 20.0 % of Vs
Output Low Level - - - 10.0 % of Vs
I2C Pull-up Resistor - 1000 - -
I2C Load Capacitance on SDA, @ 400 kHz CSDA - - 200 pF
I2C Input Capacitance (each pin) CI2C_IN - - 10.0 pF
I2C / SPI Electrical Parameters for DLVR Series
Device Options
The following is a list of factory programmable options. Consult the factory to learn more about the options.
Interface
I2C and SPI interfaces are available. NOTE: SPI interface is only available with eight (8) lead packages.
Supply Voltage
Devices are characterized at either 3.3V or 5.0V depending on the options selected. It is suggested to select
the option that most closely matches the application supply voltage for best possible performance.
Speed/Power
There are four options of Speed/Power. These are Fast(F), Noise Reduced(N), Low Power(L) and Sleep mode(S).
Fast Mode(F) Is the fastest operating mode where the device operates with continuous sampling at the
fastest internal speed.
Noise Reduced(N): Also operates with continuous samples however the ADC is set for over sampling
for noise reduction. The conversion times are resultantly longer than the Fast(F) mode however, there is
approximately 1/2 bit reduction in noise.
Low Power(L): Is similar to the Fast(F) mode with exception that the device uses an internal timer to
delay between pressure conversions. The internal timer time-out triggers the next conversion cycle. The
update rate is commensurately lower for this mode as a result.
Sleep(S): Is similar to the Low Power(L) mode however the trigger to initiate a sample comes from the
user instead of an internal timer. This is ideal for very low update rate applications that requirelow
power usage. It is also ideal for synchronizing the data conversions with the host microprocessor.
Coating
Parylene Coating: Parylene coating provides a moisture barrier and protection form some harsh media. Con-
sult factory for applicability of Parylene for the target application and sensor type.
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All Sensors DS-0300 Rev A
Operation Overview
The DLVR is a digital sensor with a signal path that includes a sensing element, a 14 bit analog to digital converter, a DSP and
an IO block that supports either an I2C or SPI interface (see Figure 1 below). The sensor also includes an internal temperature
reference and associated control logic to support the congured operating mode. The sensing element is powered down
while not being sampled to conserve power. Since there is a single ADC, there is also a multiplexer at the front end of the
ADC that selects the signal source for the ADC.
o
T
Zero
Vs
Gnd
I2C/SPI
rawP/
rawT
Pressure
Wake
Temperature
Sample Over
Sample
Enable
Sensor P/T/Z
Select
2
1
0
A
DDSP
Control
Logic
I/O
Figure 1 - DLVR Essential Model
The ADC performs conversions on the raw sensor signal (P), the temperature reference (T) and a zero reference (Z) during an
ADC zero cycle. It also has an oversampling mode for a noise reduced output. A conversion cycle that is mesuring pressure
is called a Normal cycle. A cycle where either a temperature measurement or zeroing is being performed is called a Special
cycle.
The DSP receives the converted pressure and temperature information and applies a multi-order transfer function to
compensate the pressure output. This transfer function includes compensation for span, oset, temperature eects of span,
temperature eects of oset and second order temperautre eects of both span and oset. There is also linearity compensa-
tion for gage devices and front to back linearity compensation for dierential devices.
There are two eective operating modes of the sensor 1) Free Running and 2) Triggered. The control logic performs the
synchronization of the internal functions according the factory programmed Power/Speed option (see Table 1). The Control
Logic also determines the Delay between ADC samples, the regularity of the Special cycles and whether or not the ADC per-
forms the Over Sampling. Refer to Figure 2 for the communication model associated with the operating modes listed below.
Free Running Mode: In the free running mode, conversion cycles are initiated internally at regular intervals. There are
three options available that operate in the Free Running mode (F, N and L). Two of these (F and N) run continuously while
the third option (L) has an approximate 6 ms delay between conversion cycles. All three options have Special cycles
inserted at regular intervals to accomplish the ADC zeroing and temperature measurements. Two of the options utilize
oversampling. Refer to Table 1 for specic option controls.
Triggered Mode: In the Triggered Mode, a conversion cycle is initiated by the user (or host uP). There are two availabe
methods to wake the sensor from sleep mode. The rst method (Wake All) is to wake the sensor and perform all three
measurement cycles (Z, T and P). This provides completely fresh data from the sensor. The second method (Wake P) is
to wake the sensor from sleep and only perform the pressure measurement (P).When using this second method, it is up
to the user to interleave Wake All commands at regular intervals to ensure there is suciently up to date temperature
information. Also, the Wake Pressure method is only available from the I2C interface (not available using a SPI interface).
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Table 1 - DLVR Control Logic Detail
Operation Overview (Cont’d)
Figure 2 - DLVR Communication Model
Power/
Speed
Option
Power/Speed
Description
Operating
Mode
Over
Sample
Delay
Between
Samples
Normal
ADC
Cycles
Special
ADC
Cycles
Special
ADC Cycle
Interval
F Fast No No 1 (P) 1 (Z or T) 255
N Noise Reduced Yes No 1 (P) 1 (Z or T) 255
L Low Power Yes Yes 1 (P) 1 (Z or T) 31
Sleep
(1)
(Wake Pressure) No User Defined 1 (P) n/a Never
Sleep (Wake All) No User Defined 1 (P) 2 (Z + T) Always
Note 1) Wake from sleep with pressure only reading is not available with SPI interface (I2C only).
Control Logic
S
Free
Running
Triggered
Free Running Mode [(F)ast, (N)oise Reduced and (L)ow Power Option]
Cycle Type
Internal Operation DSP Delay ADC (P) DSP Delay ADC (P) DSP Delay ADC (P) ADC (T or Z) DSP Delay ADC (P)
New Data Available
Note 1: See Table 1 for frequency of Special Cycles
Normal Cycle Normal Cycle Special Cycle (1)
Triggered Mode - Wake All [(S)leep Option]
or
SPI (SS) Read Data
Internal Operation ADC (Z) ADC (T) ADC (P) DSP ADC (Z) ADC (T) ADC (P) DSP Sleep
New Data Available
Wake All Wake All
Sleep
I2C Read Data
Sleep
Triggered Mode - Wake Pressure [(S)leep Option]
Internal Operation ADC (P) DSP ADC (P) DSP Sleep
New Data Available
I2C Wake P. Read Data Wake P.
Sleep
Sleep
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All Sensors DS-0300 Rev A
Digital Interface Data Format
For either type of digital interface, the format of data returned from the sensor is the same. The rst 16 bits consist of
the 2 Status bits followed by the 14-bit the pressure value. The third byte provides the 8 most signicant bits of the mea-
sured temperature; the fourth byte provides the 3 least signicant bits of temperature, followed by 5 bits of undened
ller data. With either interface, the host may terminate the transfer after receiving the rst two bytes of data from the
sensor, or following the third byte (if just the most-signicant 8 bits of temperature are needed). Refer to Table 2 for the
overall data format of the sensor. Table 3 shows the Status Bit denition.
Bit Denitions:
Status (S): Normal/command / busy / diagnostic
Pressure (P): Digital pressure reading
Temperature (T): Compensated temperature reading
Table 2 - Output Data Format
Table 3- Status Bit Denitions
I2C Interface
I2C Communications Overview
The I2C interface uses a set of signal sequences for communication. The following is a description of the supported
sequences and their associated pneumonic. Refer to Figure 3 for the associated usage of the following signal sequences.
Bus not Busy (I): During idle periods both data line (SDA) and clock line (SCL) remain HIGH.
START condition (ST): A HIGH to LOW transition of SDA line while the clock (SCL) is HIGH is interpreted as
START condition. START conditions are always set by the master. Each initial request for a pressure value has to
begin with a START condition.
Slave address (An): The I²C-bus requires a unique address for each device. The DLVR sensor has a precong-
ured slave address (0x28). After setting a START condition the master sends the address byte containing the
7 bit sensor address followed by a data direction bit (R/W). A "0" indicates a transmission from master to slave
(WRITE), a "1" indicates a datarequest (READ).
Acknowledge (A or N): Data is transferred in units of 8 bits (1 byte) at a time, MSB rst. Each data-receiving
device, whether master or slave, is required to pull the data line LOW to acknowledge receipt of the data. The
Master must generate an extra clock pulse for this purpose. If the receiver does not pull the data line down, a
NACK condition exists, and the slave transmitter becomes inactive. The master determines whether to send
the last command again or to set the STOP condition, ending the transfer.
DATA valid (Dn): State of data line represents valid data when, after a START condition, data line is stable for
duration of HIGH period of clock signal. Data on line must be changed during LOW period of clock signal.
There is one clock pulse per data bit.
DATA operation: The sensor starts to send 4 data bytes containing the current pressure and temperature val-
ues. The transmission may be halted by the host after any of the bytes by responding with a NACK.
STOP condition (P): LOW to HIGH transition of the SDA line while clock (SCL) is HIGH indicates a STOP condi-
tion. STOP conditions are always generated by the master.
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I2C Communications Overview (Cont’d)
Figure 3 - I2C Communication Diagram
Figure 3 illustrates the sequence of signals set by both the host and the sensor for each command. Note that for the Da-
taRead command, the host has the option of responding to the second or third bytes of data with a NACK instead of ACK.
This terminates the data transmission after the pressure data, or after the pressure data and upper byte of temperature,
have been transmitted. See Figure 6 for the I2C timing details.
1. Start All ( to wake sensor from Sleep mode, Zero ADC, read Temperature and read Pressure )
Set by bus master: - - -
-
I ST A6 A5 A4 A3 A2 A1 A0 R SP I
Set by sensor: - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - -
-
A
2. Start Pressure ( to wake sensor from Sleep mode and read Pressure only )
Set by bus master: - - - -
I ST A6 A5 A4 A3 A2 A1 A0 W SP I
Set by sensor: - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - -
-
A
3. Read Data ( with examples of reading pressure, pressure plus 8 bits of temperature and pressure plus 12 bits of temperature )
Set by bus master: - - - -
I ST A6 A5 A4 A3 A2 A1 A0 R A
Set by sensor ( pressure plus status ): - - - - - - - - - - - - - - - - - - - -
A D31 D24 D23 D16
…then, one of the following:
a) Set by bus master, to stop transfer after pressure data received: - - - - - - - - - - - - - - - - - - - - - - -
N SP I
--OR--
b) Set by bus master, to stop transfer after first temperature data byte received: - - - - - - - - - - - - -
A N SP I
Set by sensor ( high order 8 bits of temperature ): - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - -
D15 D8
--OR--
A A N SP I
Set by sensor ( all 12 bits of temperature plus padding bits ): - - - - - - - - - - - - - - - - - - - - - - - - -
- -
D15 D8 D7 D0
Bus states Sensor Address
Data format
Idle: I A6 A0 Status: D31 D30
Start: ST Default: 0x28 Pressure data: D29 D16
Stop: SP Temperature data: D15 D5
Ack: A(padding bits:) D4 D0
Nack: N
“Read” bit (1): R
“Write” bit (0): W
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All Sensors DS-0300 Rev A
I2C Command Sequence
Depending on whether the Fast, Noise Reduced, Low-Power, or Sleep options have been selected, the command se-
quence diers slightly. See Figure 3 for details of the three I2C commands.
Fast, Noise Reduced or Low-power Conguration
The part enters Free Running mode (see table 1) after power-up: it performs an initial complete measurement,
writes the calculated data to the output registers, sets the INT pin high, then goes to sleep. After a delay deter-
mined by the update rate option, the part will wake up, perform measurements, update the output registers,
then go back to sleep. DataRead is the only command recognized; as with the Micropower conguration, if
the INT pin is ignored, the host processor can repeat this command until the Status bits indicate an updated
reading.
Sleep Conguration
The part enters Triggered mode (see table 1) after power-up, and waits for a command from the bus master. If
the StartAll command is received, the temperature, ADC zero, and pressure readings are all measured, and cor-
rection calculations are performed. When valid data is written to the output registers, the INT pin is set high,
and the processing core goes back to sleep. The host processor then sends the DataRead command to shift
out the updated values. If the INT pin is not monitored, the host can poll the output registers by repeating
the DataRead command until the Status bits indicate that the values have been updated (see Tables 2 and 3).
The response time depends on conguration options (refer to Table 1 and Performance Characteristics).
Depending on the application, pressure measurements may be performed by sending the StartPressure com-
mand, which only measures the pressure value and uses previously measured temperature data in calculating
the compensated output value. This presents the result faster (in about 1/3 the delay time) than the StartAll
command. This can be a useful method to synchronize the sensor with the hose controller as well as attain-
ing the fastest overall response time without Special cycles occuring at unwanted times. The system designer
should determine the interval required for sending StartAll commands, necessary to refresh the temperature
1. Sending a Start condition, then a Stop condition, without any transitions on the CLK line, creates a com-
munication error for the next communication, even if the next start condition is correct and the clock pulse is
applied. A second Start condition must be set, which clears the error and allows communication to proceed.
2. The Restart condition—a falling SDA edge during data transmission when the CLK clock line is still high—
creates the same stall/deadlock. In the following data request, an additional Start condition must be sent for
correct communication.
3. A falling SDA edge is not allowed between the start condition and the rst rising SCL edge. If using an I2C
address with the rst bit 0, SDA must be held low from the start condition through the rst bit.
I2C Exceptions
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SPI Interface
SPI Command Sequence
DLVR sensors using the SPI interface option provide 3 signals for communication: SCLK, SS (Slave Select), and MISO.
This read-only signaling uses a hardware protocol to control the sensor, diering slightly with the speed/power option
selected as described below:
Fast(F), Noise Reduced(N) and Low-Power(L) Congurations: After power-up, the part enters Free Running
mode and begins its periodic conversion cycle, at the interval determined by the programmed Power/Speed
option. This is the simplest conguration. The only bus interaction with the host is the SPI DataRead opera-
tions. Polling the sensor at a rate slower than the internal update rate will minimize bus activity and ensure
that new values are presented with each transfer. Note that the Status bits should still be checked to verify
updated data and the absence of error conditions.
Sleep(S) Conguration: As with the I2C option, the part enters Triggered mode after power-up, and waits for
a command from the bus master. To wake the part and start a measurement cycle, the SS pin must be driven
low by the host for at least 8usec, then driven high. This can be done by shifting a dummy byte of 8 bits from
the sensor. This bus activity can be considered the SPI StartAll command, where the rising edge of SS is the
required input to start conversion. Updated conversion data is written to the output registers after a period
dependent on conguration options ( see Performance Characteristics). After this update of the registers, the
core goes to an inactive (sleep) state. The DataRead command simply consists of shifting out 2, 3, or 4 bytes
of data from the sensor. The host can check the Status bits of the output to verify that new data has been
provided. The part remains inactive following this read operation, and another StartAll operation is needed to
wake the part when the next conversion is to be performed.
SPI Bit Pattern
The sequence of bits and bus signals are shown in the following illustration (Figure 4). Refer to Figure 5 in the Interface
Timing Diagram section for detailed timing data. As previously described, the incoming data may be terminated by rais-
ing SS after 2, 3, or 4 bytes have been received as illustrated below.
Figure 4 - SPI Bit Pattern
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All Sensors DS-0300 Rev A
Figure 5 - SPI Timing Diagram
Figure 6 - I2C Timing Diagram
Interface Timing Diagrams
Page 11
SCLK
MISO
SS
tSSCLK
tCLKD
(HIZ)
tCLKD
tHIGH
tLOW
(HIZ)
tCLKSS tIDLE
tSCLK
PARAMETER SYMBOL MIN TYP MAX UNITS
S CLK c loc k freque nc y (4MHz cloc k) f 50 800 kHz
S CLK c loc k freque nc y (1MHz cloc k) f 50 200 kHz
S S drop to firs t c lock e dge tSSCLK 2.5 us
Minimum S CLK c loc k low width tLOW 0.6 us
Minimum S CLK c loc k high width tHIGH 0.6 us
Clock edge to data trans ition tCLKD 0 0.1 us
Ris e of S S relative to las t clock edge tCLKSS 0.1 us
Bus free time between ris e and fa ll of S S t 2us
IDLE
SCLK
SCLK
SCL
SDA
tH STA
tH DAT
tSU DAT
tHIGH tLOW
tSU STP tIDLE
tSU STA
PARAMETER SYMBOL MIN TYP MAX UNITS
S CL cloc k freque nc y fSCL 100 400 kHz
S ta rt c ondition hold time rela tive to S CL e dge tHSTA 0.1 us
Minimum S CL clock low width tLOW 0.6 us
Minim um S CL clock high width tHIGH 0.6 us
S ta rt c ondition s etup time rela tive to S CL e dge tSUSTA 0.1 us
Data hold time on S DA relative to S CL edge tHDA T 0us
Data s e tup time on S DA relative to S CL e dge tSUDA T 0.1 us
S top condition s etup time on S CL tSUSTP 0.1 us
Bus free time be tween s top condition and s tart cond 2 us
t
IDLE
.
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TABLE 6: Available E-Series Package Congurations
How to Order
SIP DIP J Lead SMT Low Prole DIP SIP DIP J Lead SMT Low Prole DIP
Dual Port
Same Side
E1NS E1ND E1NJ
N/A
E1BS E1BD
N/A N/A
Dual Port
Opposite
Side
E2NS E2ND E2NJ
N/A
E2BS E2BD
N/A N/A
Single Port
(Gage) N/A N/A N/A N/A N/A N/A N/A N/A
Lead Style
Non-Barbed Lid Barbed Lid
Port
Orientaon Lead Style
Refer to Table 4 for conguring a standard base part number which includes the pressure range, package and
temperature range. Table 5 shows the available conguring options. The option identier is required to complete
the device part nubmer. Refer to Table 6 for the available devices packages.
Example P/N with options: DLVR-L02D-E1NS-C-NI3F
Table 4 - How to congure a base part number
Table 5 - How to congure an option identier
Base
ID ID ID ID ID ID ID
DLVR L01D ±1 inH2O E1Dual Port Same SideNNon-Barbed SSIP CCommercial
L02D ±2 inH2O 2Dual Port Opposite Side BBarbedDDI
PI
Industrial
L05D ±5 inH2O JJ-Lead SMT
L10D ±10 inH2O
L30D ±30 inH2O
L60D ±60 inH2O
L01G 0 to 1 inH2O
L02G 0 to 2 inH2O
L05G 0 to 5 inH2O
L10G 0 to 10 inH2O
L30G 0 to 30 inH2O
L60G 0 to 60 inH2O
ExampleDLVR -L02D -E1
NS-C
TEMPERATURE RANGESERIES
ORDERING INFORMATION
Lead TypeLid Style
PACKAGEPRESSURE RANGE
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ID Descripon ID Descripon ID Descripon ID Descripon
N No Coang I I2C 3 3.3V F Fast
P Parylene Coang S SPI 5 5.0V N Noise reduced
L Low Power
S Sleep Mode
Example N I 3 F
SUPPLY VOLTAGEINTERFACECOATING SPEED/POWER
ORDERING
INFORMATION
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All Sensors DS-0300 Rev A
E1NS Package
0.64
0.025
0.282
7.17
6.45
0.254
9.80
0.386
0.010
0.25
0.192
4.88
0.380 (nom)
12.70
0.500
0.425
10.79
[9.65]
2.04
0.51
0.425
10.79
0.620
15.75
0.107
0.082
2.73
0.020
2.10
0.080
0.100
2.54
Port A
Port B
Pin 1 2 3 4
NOTES
1)Dimensions are in inches [mm]
2)For suggested pad layout, see drawing: PAD-01
E1BS Package
4.88
0.192
9.80
6.45
0.254
0.64
0.025
0.386
0.010
0.25
0.360
9.15
Port B
Port A
0.51
0.380 (nom)
[9.65]
2.54
0.020
0.088
1.68
0.100
10.80
0.425
10.80
2.11
2.24
2.73
0.425
0.107
12.70
0.5000.083
15.75
0.620
0.066
0.045
1.14
Pin 1 2 3 4
2)For suggested pad layout, see drawing: PAD-01
NOTES
1)Dimensions are in inches [mm]
Pinout
1) Gnd
2) Vs
3) SDA
4) SCL
Package Drawings
Pinout
1) Gnd
2) Vs
3) SDA
4) SCL
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E2NS Package
2.12
7.17
0.282
0.64
0.025
0.25
0.010
0.084
0.386
9.80
Pin 1 2 3 4
2.73
[9.65]
0.380 (nom)
0.082
2.10
15.75
0.425
10.79
0.500
12.70
0.020
0.425
10.79
0.107
2.04
0.51
0.620
0.080
0.100
2.54
Port B
Port A
NOTES
1)Dimensions are in inches [mm]
2)For suggested pad layout, see drawing: PAD-01
E2BS Package
Pin 1 2 3 4
Port B
Port A
0.500
12.70
0.620
15.75
0.088
2.24
10.80
0.425
0.51 2.54
2.73 0.425
10.80
0.107
0.020
0.380 (nom)
[9.65]
2.11
0.083
1.68
0.066
0.100
0.045
1.14
0.360
9.15
0.25
0.64
0.025
9.80
0.386
0.010
0.084
2.12
2)For suggested pad layout, see drawing: PAD-01
NOTES
1)Dimensions are in inches [mm]
Package Drawings (Cont’d)
Pinout
1) Gnd
2) Vs
3) SDA
4) SCL
Pinout
1) Gnd
2) Vs
3) SDA
4) SCL
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Pinout
1) Gnd
2) Vs
3) SDA/MISO
4) SCL/SCLK
5) INT/SS
6) Do Not Connect
7) Do Not Connect
8) Do Not Connect
E1ND Package
0.225
5.72
0.018
0.46
Pin 1 2 3 4
Port B
Port A
Pin 8 7 6 5
0.107
0.080
2.10
10.79
0.425
0.500
2.73
12.70
10.79
15.75
0.425
2.04
0.620
0.082
0.100
2.54
0.64 0.192
4.88
0.058
0.25
0.630
7.17
0.282
0.025
9.80
0.386
16
1.48
6.45
0.254
0.010
0.350
(min)
8.89
NOTES
1) Dimensions are in inches [mm]
2) For suggested pad layout, see drawing: PAD-03
E1BD Package
1.48
0.386
9.80
0.630
0.25 16
8.89
(min)
0.254
6.45
0.025
4.88
0.192
0.64
0.058
0.010
0.350
0.360
9.15
0.225
5.72
0.018
0.46
Pin 1 2 3 4
Port B
Port A
Pin 8 7 6 5
1.68
0.620
10.80
0.425
1.14
0.500
15.75
0.066
2.73
0.045
2.11
10.80
0.425
2.54
12.700.083
0.107
0.100
0.088
2.24
NOTES
1) Dimensions are in inches [mm]
2) For suggested pad layout, see drawing: PAD-03
Package Drawings (Cont’d)
Pinout
1) Gnd
2) Vs
3) SDA/MISO
4) SCL/SCLK
5) INT/SS
6) Do Not Connect
7) Do Not Connect
8) Do Not Connect
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E2ND Package
0.25
0.630
7.17
0.282
0.64
2.12
0.084
0.025
9.80
0.386
1.48
0.058
16
0.010
0.350
(min)
8.89
0.225
5.72
0.018
0.46
Pin 1 2 3 4
Pin 8 7 6 5
Port B
Port A
2.1010.79
0.425
12.70
0.500
10.79
0.425
0.620
15.75
0.107
2.73
2.04
0.080
0.082
0.100
2.54
NOTES
1) Dimensions are in inches [mm]
2) For suggested pad layout, see drawing: PAD-03
E2BD Package
Port B
Pin 1 2 3 4
Port A
Pin 8 7 6 5
0.083
0.620
0.425
10.80
0.107
0.100
0.045
1.68
2.73
2.11
0.425
1.14
0.500
12.70
2.54
15.75
0.066
10.80
0.088
2.24
8.89
0.64
0.058
16
(min)
0.630
0.25
0.360
0.350
9.80
1.48
9.15
0.025
0.386
0.010
0.084
2.12
0.225
5.72
0.018
0.46
NOTES
1) Dimensions are in inches [mm]
2) For suggested pad layout, see drawing: PAD-03
Package Drawings (Cont’d)
Pinout
1) Gnd
2) Vs
3) SDA/MISO
4) SCL/SCLK
5) INT/SS
6) Do Not Connect
7) Do Not Connect
8) Do Not Connect
Pinout
1) Gnd
2) Vs
3) SDA/MISO
4) SCL/SCLK
5) INT/SS
6) Do Not Connect
7) Do Not Connect
8) Do Not Connect
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E1NJ Package
A
0.254
6.45
7.17
0.282
9.80
0.386
0.025
0.64 0.192
4.88
0.155
3.94
DETAIL A
SCALE 4 : 1
0.059
0.81
0.032R
1.51
0.010
0.25
Pin 1 2 3 4
Pin 8 7 6 5
2.54
10.79
0.425
12.70
0.500
0.620
15.75
10.79
0.425
0.082
2.10
2.73
2.04
0.080
0.100
0.107
0.050
1.27
Port A
Port B
2)For suggested pad layout, see drawing: PAD-10
NOTES
1)Dimensions are in inches [mm]
E2NJ Package
0.155
3.94
DETAIL A
SCALE 4 : 1
0.059
0.81
0.032R
1.51
0.010
0.25
A
7.17
0.282
0.630
0.386
16
0.64
9.80
0.025
0.084
2.12
Pin 1 2 3 4
Pin 8 7 6 5
Port B
Port A
0.500
12.70
0.425
10.79
0.620
15.75
0.107
0.082
0.080
0.100
2.10
2.73
2.04
2.54
10.79
0.425
0.050
1.27
NOTES
1)Dimensions are in inches [mm]
2)For suggested pad layout, see drawing: PAD-10
Package Drawings (Cont’d)
Pinout
1) Gnd
2) Vs
3) SDA/MISO
4) SCL/SCLK
5) INT/SS
6) Do Not Connect
7) Do Not Connect
8) Do Not Connect
Pinout
1) Gnd
2) Vs
3) SDA/MISO
4) SCL/SCLK
5) INT/SS
6) Do Not Connect
7) Do Not Connect
8) Do Not Connect
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Suggested Pad Layout
PAD-01
(Finished Size)
0.035~0.039 inch
0.100
(typ.)
2.54
PAD-03
(Finish Size)
0.035~0.039 inch
0.630
16
0.100
(typ.)
2.54
(typ.)
0.100
1.27
0.590
14.99
2.54
0.050
0.090
2.29
PAD-10
Product Labeling
All Sensors reserves the right to make changes to any products herein. All Sensors does not assume any liability arising out of the application or use of any product or circuit described
herein, neither does it convey any license under its patent rights nor the rights of others.
Lot Number
Part Number
Company
Example Device Label
All Sensors
R9J21-3
E1NS-C
DLVR-L02D
NI3F
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Mouser Electronics
Authorized Distributor
Click to View Pricing, Inventory, Delivery & Lifecycle Information:
All Sensors:
DLVR-L10D-E2NJ-C-NI3F DLVR-L10D-E1NS-C-NI5F DLVR-L10D-E1NJ-C-NI3F DLVR-L60D-E1NS-C-NI3F DLVR-
L02D-E1NS-C-NI5F DLVR-L01D-E1NS-C-NI3F DLVR-L60D-E1NJ-C-NI3F DLVR-L01D-E2NJ-C-NI5F DLVR-L02D-
E1NJ-C-NI5F DLVR-L60D-E1NS-C-NI5F DLVR-L02D-E1NS-C-NI3F DLVR-L60D-E2NJ-C-NI3F DLVR-L01D-E1NJ-C-
NI5F DLVR-L60D-E2NJ-C-NI5F DLVR-L01D-E2NJ-C-NI3F DLVR-L02D-E1NJ-C-NI3F DLVR-L10D-E2NS-C-NI3F
DLVR-L01D-E1NS-C-NI5F DLVR-L60D-E2NS-C-NI3F DLVR-L02D-E2NS-C-NI5F DLVR-L01D-E2NS-C-NI5F DLVR-
L10D-E2NS-C-NI5F DLVR-L02D-E2NJ-C-NI3F DLVR-L02D-E2NS-C-NI3F DLVR-L02D-E2NJ-C-NI5F DLVR-L10D-
E1NJ-C-NI5F DLVR-L60D-E1NJ-C-NI5F DLVR-L01D-E1NJ-C-NI3F DLVR-L10D-E2NJ-C-NI5F DLVR-L01D-E2NS-C-
NI3F DLVR-L10D-E1NS-C-NI3F DLVR-L60D-E2NS-C-NI5F