Visual fault locator (VFL) with variable gain control
Systems, methods, and devices for testing for faults in a fiber optic cable are provided. A Visual Fault Locator (VFL), according to one implementation, includes an output port configured for connection with an optical fiber to be tested. The VFL also includes a variable light source configured to emit visible light at different power levels from the output port. For example, the different power levels may correspond with different light intensity levels. In some implementations, the VFL may further include a gain control device connected to the variable light source, whereby the gain control device may be configured to control the power of the variable light source to enable the variable light source to emit the visible light at multiple power levels.
1 . A Visual Fault Locator (VFL) comprising:
an output port configured for connection with an optical fiber to be tested;
a variable light source configured to emit visible light at different power levels from the output port; and
a gain control device connected to the variable light source, wherein the gain control device is configured to increase the power of the variable light source from a low level to a high level when the user presses and holds down a boost button.
2 . The VFL of claim 1 , wherein the multiple power levels include one or more lower levels below class 2M and one or more high levels from class 3R or more.
3 . The VFL of claim 1 , wherein the gain control device is configured to increase the power from the low level to the high level in multiple steps.
4 . The VFL of claim 3 , wherein the gain control device is configured to increase the power from one step to the next when the user continuously holds down the boost button for a predetermined amount of time.
5 . The VFL of claim 1 , wherein the gain control device is configured to return the power to the low level when the user releases the boost button.
6 . The VFL of claim 1 , wherein the boost button also functions as an on/off button.
7 . The VFL of claim 1 , further comprising one or more input devices for receiving command signals from an external device, wherein the command signals are configured to control the power level of the variable light source.
8 . The VFL of claim 7 , wherein the one or more input devices include at least a radio configured to wirelessly receive the command signals from the external device.
9 . The VFL of claim 7 , wherein, before receiving the command signals, the VFL is configured to perform a pairing procedure to pair the external device with the VFL.
10 . The VFL of claim 7 , wherein the command signals received from the external device include at least a continuation input for instructing the variable light source to maintain the power level at an elevated level, the continuation input related to user activity associated with the external device.
11 . The VFL of claim 7 , wherein the command signals are related to remote signals transmitted from a remote device in communication with the external device.
12 . The VFL of claim 1 , wherein the VFL is incorporated in one of a Live Fiber Detector, a photonic multiplexing/demultiplexing component, and a photonic network component.
13 . A control device comprising a processor and memory configured to store computer logic having instructions that, when executed, enable the processor to perform the steps of:
obtaining control input from a user via a boost button; and
communicating the control input to a Visual Fault Locator (VFL) having a variable light source and an output port, wherein the control input causes the VFL to change a power level of the variable light source resulting in a change of light intensity emitted from the output port to a near end of an optical fiber under test,
wherein the control device is configured to increase the power of the variable light source from a low level to a high level when the user presses and holds down the boost button.
14 . The control device of claim 13 , wherein the step of communicating the control input to the VFL includes communicating wireless to a radio of the VFL.
15 . The control device of claim 13 , wherein the step of obtaining control input from the user includes receiving the control input from a remote device located near a far end of the optical fiber under test.
16 . The control device of claim 15 , wherein the step of obtaining control input from the user further includes receiving additional control input from another user associated with the control device and using the control input and additional control input to control the power level of the variable light source of the VFL.