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2014年1月13日星期一

CWDM System Testing Process

With the explosion of CWDM, it is very necessary to formulate a basic testing procedure to certifying and troubleshooting CWDM networks during installation and maintenance. Today, one of the most commonly available test methods is the use of an OTDR or power source and meter, which is capable of testing the most commonly wavelengths, 1310, 1490, 1550 and 1625nm.
This article here is based on the pre-connectorized plug and play CWDM systems that allow for connecting to test equipment in the field:
In the multiplexing module of a pre-connectorized CWDM system, wavelengths are added to the network through the filters and transmitted through the common port. The transmitted wavelengths enter the COM port in the de-multiplexing module and are dropped. All other wavelengths present at the MUX/DeMux module are went through the express port.
Most of today's OTDRs have expanded capability for testing wavelengths in addition to 1310 and 1550 nm. The OTDR allows partial testing of such system offered in test equipment source. The OTDR allows partial testing of these systems by using the flexibility of pre-connectorized solutions. This is done by switching connections within the CWDM field terminal to allow for testing portions of the non-1310/1550 nm optical paths.
To test the 1310nm, the first step is to test the downstream portion of a system at 1310 nm by connecting the OTDR to the 1310 nm input on the CWDM MUX located at the headend. Then switch the test leads over the the upstream side and repeat. Test method is the same for both the downstream and upstream paths.
1550 nm testing is performed similarly by switching the test leads to the 1550nm ports. If additional wavelengths are present, you need to follow the procedures below:
Using the 1550 nm test wavelength, switch the OTDR connection to the 1550 nm input port on the headend MUX. Have a technician stationed at the field terminal connect the drop cable leg connectors for the 1570 nm customer to the 1550 nm port on the Mux/demux device. What should be noted is that in a play and plug solution this should not require repositioning where the drop cable passes through the OSP terminal. Test the downstream 1570 nm passive link at 1550 nm, and then repeat for the 1570 nm upstream side. When testing is complete, have the technician switch the connections for the 1570 nm drop back to the 1570 nm ports on the field MUX/DeMUX device as shown in Figure 6. Repeat this process for the 1590 nm, 1610 nm drop cables and other wavelengths present. Finally, test the 1550 nm path normally with the 1550 nm drop cable connected to the 1550nm MUX/DeMUX ports.
Since the OTDRs is able to test at 1490 or 1625 nm, the drop cables under test could be connected to the EXP port of the module and tested at 1490 or 1625 nm respective wavelength, without having to connect each to the 1550 nm port. Otherwise the procedure is the same.
As CWDM network become more and more common the data they carrying has also become critical. The procedure introduced here allows for testing modular pre-connectorized CWDM systems with standard optical test equipments. Relative channel power can be measured with a wide-band fiber optic power meter at the filter outputs or at other points in the network with the aid of a wavelength selective test device or with an optical spectrum analyzer.

2013年4月21日星期日

650nm Fault Locator for Perfect Optical Network Fault Locating


FiberStore has launched series easy-to-use visual fault locators for perfect optical network fault locations. 650nm Visual Fault Locator among that, is editor here happy to introduce. 650nm Visual Fault Locator is one of the most common used types of fault locators with the 650nm visible laser source and output power of 10mW for testing single mode or multimode fiber by emitting a bright beam of laser light into a fiber to allow users to see a break as a glowing or blinking red light. This visual fault locator is intended for examining all kinds of patch cords, ribbons or bunched pigtails in the installation and maintenance of fiber optic networks, which is also regarded as the perfect fiber optic testing tools for engineers working on fiber optic networks, telecommunications and CATV maintenance.
The handheld 650nm optical visual fault locator, model BML 201 is perfect for optimizing mechanical fusion splicing and end-to-end fiber identification. It offers a maximum measurement distance of up to 10km and boasts a rechargeable battery supporting 12 hours continuous work. The energy saving design of it makes it will automatically shut down if there is no operation for about 10 minutes. The universal fiber adapter of this visual fault locator can be connected with all 2.5mm adapters such as FC, SC or ST.
650n visual fault locator
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A Small Make up Knowlege for Visual Fault Locator
Visual fault locator a very cost-effective and power-saving fiber test tools to locate imperfections, fiber cuttings, micro or macro bends in fiber optic cable links. It can come in a pen shape, handheld portable types. A visual fault locator consists of laser light source, pulse modulation circuit board, light coupling lens and fiber optic connector adapter.
In the working process of the visual fault locator, it injects a highly visual red color laser light into the fiber optic cable though a built-in connector adapter. The red laser light can be switched between continuous mode and pulse mode with a 1~2 Hz frequency and 60ms duration. There are two types of connector adapters: 2.5mm and 1.25mm in diameter. 2.5mm version is for FC, SC and ST connectors, while 1.25mm version is for LC and MU connectors. Light source of the visual fault locator is usually a high power class 2 laser diode at a wavelength of 635nm, 650nm or 670nm.
Visual fault locators can work with both single mode and multimode fibers. Fiber distance, the longest fiber length where you can see the leakage light freely for multimode fiber is 10km, and 5km for single mode fiber.
Fiber optic visual fault locator is regularly used for testing and locating breaks in LANs, FDDI, ATM, fiber data links and loops, telephones, ships and other vessels. It can be used as an independent fiber-link basic troubleshooting instruments or in conjunction with an OTDR to pinpoint faults. Typical industrial applications are fiber optic networks, telecoms network and CATV network maintenance.