SRS Labs SR530 manual TIE Anchor, Transcover, Mica, #4 Flat, #4 Split, GROMMET2, #4 Shoulder

Page 73

SR530 COMPONENT PARTS LIST

REF.

SRS part#

VALUE

DESCRIPTION

U 807

3-00110-340

MC1489

Integrated Circuit (Thru-hole Pkg)

U 808

3-00078-340

DS75160A

Integrated Circuit (Thru-hole Pkg)

U 809

3-00117-325

78L12

Transistor, TO-92 Package

U 810

3-00123-325

79L12

Transistor, TO-92 Package

U 811

3-00079-340

DS75161A

Integrated Circuit (Thru-hole Pkg)

U 901

3-00095-331

LM317K

Voltage Regulator, TO-3 Metal Can

U 902

3-00099-331

LM337K

Voltage Regulator, TO-3 Metal Can

U 903

3-00114-329

7815

Voltage Reg., TO-220 (TAB) Package

U 904

3-00114-329

7815

Voltage Reg., TO-220 (TAB) Package

U 905

3-00114-329

7815

Voltage Reg., TO-220 (TAB) Package

U 906

3-00120-329

7915

Voltage Reg., TO-220 (TAB) Package

U 907

3-00120-329

7915

Voltage Reg., TO-220 (TAB) Package

U 908

3-00120-329

7915

Voltage Reg., TO-220 (TAB) Package

U 909

3-00113-340

7805CK

Integrated Circuit (Thru-hole Pkg)

U 910

3-00116-325

78L05

Transistor, TO-92 Package

U 911

3-00096-340

LM317L

Integrated Circuit (Thru-hole Pkg)

U 912

3-00100-340

LM337L

Integrated Circuit (Thru-hole Pkg)

Z 0

0-00005-007

SR530

Heat Sinks

Z 0

0-00014-002

6J4

Power_Entry Hardware

Z 0

0-00016-000

TIE ANCHOR

Hardware, Misc.

Z 0

0-00017-002

TRANSCOVER

Power_Entry Hardware

Z 0

0-00019-003

MICA

Insulators

Z 0

0-00025-005

3/8"

Lugs

Z 0

0-00043-011

4-40 KEP

Nut, Kep

Z 0

0-00048-011

6-32 KEP

Nut, Kep

Z 0

0-00064-027

6-20X5/8P

Screw, Sheet Metal

Z 0

0-00079-031

4-40X3/16 M/F

Standoff

Z 0

0-00084-032

36154

Termination

Z 0

0-00089-033

4"

Tie

Z 0

0-00095-040

#4 FLAT

Washer, Flat

Z 0

0-00096-041

#4 SPLIT

Washer, Split

Z 0

0-00113-053

10" #24

Wire #24 UL1007 Strip 1/4x1/4 Tin

Z 0

0-00117-053

12" #24

Wire #24 UL1007 Strip 1/4x1/4 Tin

Z 0

0-00119-053

15" #24

Wire #24 UL1007 Strip 1/4x1/4 Tin

Z 0

0-00128-053

4" #24

Wire #24 UL1007 Strip 1/4x1/4 Tin

Z 0

0-00130-050

5-5/8" #18

Wire #18 UL1007 Stripped 3/8x3/8 No Tin

Z 0

0-00132-053

6-1/2" #24

Wire #24 UL1007 Strip 1/4x1/4 Tin

Z 0

0-00136-053

8-1/2" #24

Wire #24 UL1007 Strip 1/4x1/4 Tin

Z 0

0-00153-057

GROMMET2

Grommet

Z 0

0-00185-021

6-32X3/8PP

Screw, Panhead Phillips

Z 0

0-00187-021

4-40X1/4PP

Screw, Panhead Phillips

Z 0

0-00207-003

TO-5

Insulators

Z 0

0-00222-021

6-32X1/4PP

Screw, Panhead Phillips

Z 0

0-00225-052

17" #22 BLACK

Wire #22 UL1007

Z 0

0-00226-052

17" #22 WHITE

Wire #22 UL1007

Z 0

0-00227-052

17" #22 RED

Wire #22 UL1007

Z 0

0-00228-052

17" #22 GREEN

Wire #22 UL1007

Z 0

0-00231-043

#4 SHOULDER

Washer, nylon

Z 0

0-00241-021

4-40X3/16PP

Screw, Panhead Phillips

Z 0

0-00249-021

6-32X1-1/2PP

Screw, Panhead Phillips

Z 0

0-00256-043

#6 SHOULDER

Washer, nylon

69

Image 73
Contents Model SR530 Page Table of Contents Appendix C Gpib NON-OPERATING OperatingPage SR530 Specification Summary Gpib DemodulatorFront Panel Summary Enbw Abridged Command List Status Byte Definition Configuration SwitchesSignal Filters Signal InputsSR510 Guide to Operation Front Panel SensitivityStatus Dynamic ReserveDisplay Select Channel 1 DisplayOutput Channel OutputRel Channel Offset ChannelRcosø Output Expand ChannelChannel 2 Display Auto Phase Reference Input Rsinø OutputTrigger Level Phase Controls Reference ModeReference Display Time ConstantDefaults PowerLocal and Remote SR530 Guide to Operation Rear Panel Page SR530 Guide to Programming Command SyntaxCommunicating with the SR530 Front Panel Status LEDsTry-Out with an Ascii Terminal RS232 Echo and No Echo OperationLOW Norm High SR530 Command ListN1,n2,n3,n4 Page Status Byte ErrorsBit Trouble-Shooting Interface Problems ResetCommon Hardware Problems include Common Software Problems includeSR530 with the Gpib Interface SR530 with the RS232 InterfaceGpib with RS232 Echo Mode Serial Polls and Service RequestsSR530 with Both Interfaces Measurement Example Lock-in TechniqueShielding and Ground Loops Understanding the SpecificationsPage Page SR530 Block Diagram Phase Sensitive Detectors Signal ChannelReference Channel DC Amplifiers and System GainCircuit Description Demodulator and Low Pass Amplifier Reference OscillatorExpand Analog Output and ControlFront Panel Microprocessor ControlRS232 Interface Power SuppliesGpib Interface Amplifier and Filter Adjustments Multiplier AdjustmentsCalibration and Repair Replacing the Front-End Transistors Notch FiltersNon-Essential Noise Sources Appendix a Noise Sources and CuresPage Page Appendix B Introduction to the RS232 Case 1 The Simplest ConfigurationBaud Rate Case 2 RS232 with Control LinesParity Stop BitsVoltage Levels Final TipBus Description Appendix C Introduction to the GpibProgram Example IBM PC, Basic, via RS232 Appendix D Program ExamplesProgram Example IBM PC, Microsoft Fortran v3.3, via RS232 Page #include stdio.h Program Example IBM PC, Microsoft C v3.0, via RS232Page Program Example 4 IBM PC,Microsoft Basic, via Gpib ′INCREMENT X6 Output by 2.5 MV Program Example HP85 via Gpib Documentation PC1 Oscillator Board Parts ListSW1 DpdtBR1 Main Board Parts ListBR2 BT1SR530 Component Parts List SR530 Component Parts List PIN D 22U MINGpib Shielded CX1FU1 CY1MPSA18 SR530 Component Parts List SR530 Component Parts List SR530 Component Parts List SR530 Component Parts List SR530 Component Parts List 4PDT SPSTX8SR513 Assy SR530 Component Parts List Static RAM, I.C Z80A-CPUTranscover TIE AnchorMica #4 FlatFront Panel Board Parts List RED LD2 LD1LD3 Quad Board Parts List SR530 Component Parts List PC1 SR530 Component Parts List Miscellaneous Parts List SR530 Component Parts List

SR530, Lock-In Amplifier specifications

The SRS Labs Lock-In Amplifier, model SR530, is a powerful tool designed for high-precision measurements in the realm of scientific research and industrial applications. This state-of-the-art instrument excels in extracting small signals from noisy environments, making it an invaluable asset for experiments in fields such as physics, engineering, and materials science.

One of the main features of the SR530 is its ability to perform synchronous detection, which is key to improving signal-to-noise ratios. By utilizing a reference signal, the device correlates the incoming signal with the reference to effectively filter out noise, allowing for the accurate measurement of weak signals that might otherwise be obscured. This process of phase-sensitive detection is fundamental to the operation of the Lock-In Amplifier.

The SR530 offers a wide frequency range, covering from 0.1 Hz to 100 kHz. This broad frequency response allows it to handle a diverse array of signals, making it suitable for various applications including optical detection, capacitance measurements, and in many cases, voltammetry. The device is also equipped with multiple inputs and outputs, facilitating the integration with other laboratory equipment and enabling complex experimental setups.

Precision is further enhanced with its adjustable time constant, which allows users to optimize the response time based on experimental needs. The user can choose time constants from 10 microseconds to 10 seconds, accommodating fast dynamic measurements as well as those requiring stability over longer durations.

Another remarkable characteristic of the SR530 is its digital processing capabilities. The device features a highly accurate digital voltage measurement system, minimizing drift and ensuring long-term stability. Additionally, the use of microprocessors enhances data handling and allows for features such as programmable settings, facilitating automated measurements.

Moreover, the SR530 includes a range of output options, including analog outputs, which can be used for direct signal processing, as well as digital interfaces for integration with computers. This ensures that users can not only capture high-fidelity data but also analyze and display it efficiently.

In conclusion, the SRS Labs SR530 Lock-In Amplifier stands out due to its sophisticated technology, versatile features, and robust performance. Its precision, flexibility, and ease of use make it an ideal choice for researchers and engineers looking to unlock the potential of weak signal measurement in complex environments.