
So whad'ya think?
Personal blog, IT tech tips, woodworking, travel, and anything else we care to share.. it's all on here. Comment if you like a post. It's always a pleasure to know others enjoy reading the blog.
Well, as of 9:30 this evening I'm back in town. Tim and I got up early this moring in Greenville, SC and completed our last day of training and then took the FOA CFOT Exam (Fiber Optic Association's Certified Fiber Optic Technician). As of tonight, with a passing score of 93, I am officially a licensed fiber technician for the USA. I know it's not a large step for most people, but after a few years of doing fiber optics anyway, it's nice to have some accreditation to back it up. This also set me up for the next stage, which is becoming an AFL partner in eastern North Carolina, which will allow me to offer a 25 year warranty on all our fiber work, in addition to the 25 year warranty we already offer on our HellermannTyton twisted-pair networking.
END OF BACK PATTING SESSION...
Ok.. the part I want your opinion on.
Ok. I have an opinion question and PLEASE take a moment to respond to this and let me know your opinions. I need to settle on a name for the corporation to be able to accept our partners into our personally owned business. We already have 3rd and Wayne, which is technically a sole proprietorship. However, in my mind, if I were a partner coming in to join the business, I'd prefer to a) Have my name on the letterhead too, or B) Be joining a corporation that isn't specifically representative of any person or persons.
To that end, we have bought and purchased a few different names over the last few months, and now it's time to decide. As primary shareholder, I can technically make the decision on my own and run with it, but I'd prefer to have the agreement of the BoD. There are currently two names on the table for discussion. (PLEASE COMMENT ON WHAT YOU THINK.. AND COMMENT HONESTLY)
Option 1: Twisted Networx (www.twistednetworx.com and www.twnetworx.com)
Pros:
Cons:
Option 2: Fidelit(y) Networks (The "y" is shaded out, but it's there still)
Pros:
Cons:
RESPONSES?
Seriously, whoever you might be, take a moment and send me your opinion. Even if you just take a second to make a comment about one or the other, ANY input is welcome. I'm at the point where I need to make a decision, and while I'm capable of doing it fine on my own, I know that I sometimes get near-sighted with my visions for the company so I want to hear what the world at large thinks.
Any and all opinions welcome.
Well, since I like to write and I also need to study, I decided to couple both into one. I'm reviewing the notes for my BICSI fiber exam tomorrow. If you have even the least bit of a life, you'll skip this whole post! If not, you're going to be bored to death!
Primary Elements of Optical Fiber: These are definitely on the test. (believe it or not, people miss this one)
Core Elements (What makes up the difference between the fibers)
Single Mode:
Multi Mode:
Mechanical Strength Properties of Fiber Cable
Waveguiding Fiber (controlling the flow of lightwaves down the path of glass at a given frequency)
Index of Refraction:
Refractive Index (Optical Density Principles)
Critical Angle
Light will bend as it travels from one index of refraction to another with a different n. The bend increases as the angle of entry (numerical aperature) decreases. Eventually, the angle of light is small enough to prevent light from entering another n. This is the critical angle.
The numerical aperature is the angle of approach of light coming into the fiber, represented in a degree format.
INDEXING light within fiber:
There are two kinds of indexing for fiber-optic cables currently used today. Those are Stepped Index and Graded Intex. Stepped index is only used in singlemode fiber, and some rare uses of MM fiber such as home audio mm fiber, requiring communications in the ultra high wavelengths.
For MultiMode (MM) purposes, a Graded index is used to help turn the sharp angles of refraction into more wave-like shapes (smooth curves). This is achieved by applying cladding to the core of the fiber using multiple layers, each with a slightly higher index of refraction as they increase in distance from the axis of the core. Utilizing this technique bends the light in a smoother wave form (sinusodial) and increases the speed at which the light travels through the fiber.
Modes of Propogation
Singlemode: Possesses one single mode (wave) of light for increased speed, better for longer distances.
MultiMode: possesses many waves of light, due to the wider numerical aperature. The large core(50/125 or 62.5/125) means light can travel on more wavelengths at once through the fiber.
Since SM fiber has only one mode, there is no pulse spreading, meaning more bandwidth. Conversely, MM fiber's larger core allows more pathways of light to enter the fiber, which in turn creates pulse spreading (dispersion) that limits bandwitch. The conversion of the data on the signal end is translated by a receiver on the end node, which is looking for a specific binary format. (For example 1, 0, 1, 0, 1,0, etc....) Multimode fiber possesses more than one wave of light, meaning the modes might get overlapped (dispersed) resulting in the receiving end signal looking more like 1, 1, 1,0,0, 1, 0, 1, etc. Compensating for this modal dispersion decreases bandwidth availability.
Multimode Sizes: (50 vs 62.5)
Inrinsic Attenuation
Intrinsic attenuation occurs due to something inside or inherent to the fiber. It is caused by impurities in the glass during the manufacturing process. As precise as manufacturing is, there is no way to eliminate all impurities, though technological advances have caused attenuation to decrease dramatically since the first optical fiber in 1970.
When a light signal hits an impurity in the fiber, one of two things will occur: it will scatter or it will be absorbed.
Extrinsic Attenuation
The second category of attenuation is extrinsic attenuation. Extrinsic attenuation can be caused by two external mechanisms: macrobending or microbending. Both cause a reduction of optical power.
Macrobending
If a bend is imposed on an optical fiber, strain is placed on the fiber along the region that is bent. The bending strain will affect the refractive index and the critical angle of the light ray in that specific area. As a result, light traveling in the core can refract out, and loss occurs. (Figure 13)
A macrobend is a large-scale bend that is visible; for example, a fiber wrapped around a person's finger. This loss is generally reversible once bends are corrected.
To prevent macrobends, all optical fiber (and optical fiber cable) has a minimum bend radius specification that should not be exceeded. This is a restriction on how much bend a fiber can withstand before experiencing problems in optical performance or mechanical reliability. The rule of thumb for minimum bend radius is 1 1/2" for bare, single-mode fiber; 10 times the cable's outside diameter (O.D.) for non-armored cable; and 15 times the cable's O.D. for armored cable.
Microbending (pinching)
The second extrinsic cause of attenuation is a microbend. This is a small-scale distortion, generally indicative of pressure on the fiber. (See Figure 14 below.) Microbending may be related to temperature, tensile stress, or crushing force. Like macrobending, microbending will cause a reduction of optical power in the glass.
Microbending is very localized, and the bend may not be clearly visible upon inspection. With bare fiber, microbending may be reversible; in the cabling process, it may not.
Modal Dispersion:
Chromatic Dispersion: (on test)
Waveguide Dispersion
Memorize the three step process for fx manufacturing:
(Indoor cable doesn't need the loose tube design because it isn't going to be subjected to temperature extremes. Vast changes in exterior temperature require that the Loose Tube fiber allow for the fiber and other components to expand and contract during different environments, which is why they are "loosely" stacked inside the tubing.)
Loose Tube Cable: (250 mµ fibers floating in gel, decoupled from cabling stresses.) (outside to inside shown below)
Loose Tube Armored
UniFlex (Small diameter, up to 24 cores maximum)
ADSS: All Dielectric Self Supporting - Tensile Strength of 60,000 lbs.
Optical Ground Wire
Loose Tube
Tight Buffer
Ok.. giving up.. going to bed.