Wednesday, September 19, 2007
Cable Outer Sheath PVC vs PE
Polyvinyl chloride is basically a hard thermoplastic, but by blending with certain plasticisers a range of general purpose flexible cable compounds of varying degrees of softness can be produced. By the use of selected plasticisers and other additives, grades of PVC can be made which are suitable for either hot or cold ambient temperatures.
Properties
Polyvinyl chloride is a good general purpose thermoplastic. It has good mechanical and ageing properties, and excellent resistance to ozone and weather. It is preferable to pigment it with carbon black to obtain optimum resistance to the effects of sunlight.
Cables insulated and sheathed with PVC will operate satisfactorily when exposed to or immersed in salt or fresh water. Standard PVC compounds are reasonably flame retardant and this property can be improved by special compounding techniques. In general PVC has good resistance to chemicals but affected by solvents and some oils which tend to leach out of the plasticiser and thus cause embrittlement. The so-called 'Heat resisting' grades of PVC have good ageing characteristics at elevated temperatures, but suffer in common with general purpose grades of the tendency to deform under pressure as the temperatures approaches the melting point of the PVC (approx. 130°C). The insulation resistance of PVC is lower than that of some plastics but more than adequate for most wiring applications.
Compared with elastomers, PVC and other thermoplastic materials are susceptible to temperature variations, and they become progressively less flexible as the ambient temperature is lowered.
In general PVC cables should not be installed when the temperature is below 0°C unless the cables have been stored above this temperature for the previous 24 hours. Failure to observe this precaution may result in cracking or shattering of the PVC.
Uses
PVC is used extensively for general wiring cables, low voltage mains cable, domestic flexibles, telephone cable and instrument wiring. It is widely used as a corrosion resistant coating over lead and aluminium sheathed cables.
The maximum continuous operating temperature of general purpose compounds is specified as 70°C and for heat resisting grades as 85°C.
Polyethylene (Polythene)
Polyethylene is a thermoplastic obtained by the polymerisation of ethylene. Depending on the particular polymerisation technique used, polyethylene of varying densities and molecular weight can be produced, and these can therefore be broadly classified as either low or high density polyethylene.
Properties
Polyethylene has extremely good electrical characteristics and excellent resistance to water, chemicals and some solvents. However, it has only moderate resistance to oils and has the disadvantage of being flammable. The low temperature properties of polyethylene are good. It is customary to pigment with carbon black both high and low density polyethylene, to improve their resistance to weather. Polyethylene is an excellent insulation for high voltage cables, but when extruding thick layers of dielectric, care has to be taken to prevent the inclusion of voids during this process. Polyethylene has a melting point of about 110°C-115°C which is a serious disadvantage for cables liable to be subjected to short circuit and overload conditions; this is one of the reasons why the use of this material has discontinued for the insulation of general wiring cables.
Uses
Polyethylene is extensively used either in the solid or expanded form for the insulation of communication cables. One major application is for the insulation of coaxial cable for television downleads, and another is for the insulation of multicore telephone cables where its excellent electrical properties enable a thin small radial wall of insulation to be employed. Polyethylene is used for submarine cables and in some types of high voltage cables. High density polyethylene can be used as an external sheath on cables to provide corrosion protection.
The recommended continuous operating temperature of polyethylene is normally stated as 70°C, to allow a factor of safety for overloads up to a maximum temperature of 90°C.
Wednesday, July 18, 2007
COMPARISON OF GRP/FRP CABLE TRAYS V/S METAL CABLE TRAYS
1.Corrosion Resistance
GRP/FRP - Excellent corrosion resistance against sea water and most chemical fumes
2.Hot Working
GRP/FRP -No Hot working, all assembly by Nut & Bolts
3.Light weight
GRP/FRP -Sp.gr. 1.9, 1/4th that of steel, even lighter than Aluminum(sp.gr.2.8), just one person required to lift a big size cable ladder, so very easy and fast Installation, saving time and money
4.Fire Retardant
GRP/FRP -Meets most stringent offshore fire resistance norms as per British, ASTM and UL specifications
5.Installation Cost
GRP/FRP -Very low, as lighter in wt hence only one man can lift, and very easy to cut and fabricate at site, thus faster installation and easy site adjustment and modifications
6.Risk of cable damage
GRP/FRP -Very low, as being plastics have much less hardness and even its sharp edges cannot damage a cable
7.High insulation ands Safe
GRP/FRP -No earthing of cable tray is required as it has high Insulation value. In case of any cable stripping, the tray being Insulated is safe for the Humans.
8.Part consolidation
GRP/FRP -As GRP/FRP is extruded section, inbuilt ribs for reinforcement, collars for fixing covers are possible in single section
9.U.V. resistance
GRP/FRP -All GRP/FRP cable Trays are made from very high U.V. additives, in addition to special surfacing Veils for glass blooming prevention, and carbon black for additional U.V protection
10.Antistatic
GRP/FRP - Cable trays are available in antistatic option as well for oil hazardous areas on demand, thus safe even in hydrocarbon atmosphere.
11.First Time COST
GRP/FRP - FRP/GRP cable trays are competitive to SS trays with all above advantages
FRP or GRP Cable Ladder/Tray
General
Known as glass-reinforced plastic (GRP) in Britain, fibre-reinforced plastic (FRP) in the USA, or by the trade name fibreglass (after the manufacturing company Fibreglass Ltd.), GRP has been used for a wide range of applications from car body panels and boat hulls to furniture and tennis rackets. It has the virtue of a good weight to strength ratio, rust resistance, and ability to be moulded in a wide variety of ways. It became increasingly widely used in the post-Second World War period, a pioneering design being the celebrated DAR Armchair by Charles and Ray Eames for the 1948 Low-Cost Furniture Design Competition at the Museum of Modern Art in New York. Very much paralleled by the organic forms found in much contemporary product, train, and automobile design in Italy, the flowing, sculptural form of the seat (supported on a metal frame) expressed the creative possibilities of the new medium. These were realized in subsequent designs such as Eero Saarinen's elegant Tulip armchair of 1956. Verner Panton was another designer to explore the expressive qualities of the medium in his moulded, cantilevered chair of 1960 first manufactured in West Germany. Many furniture designs first manufactured in GRP have subsequently been manufactured in ABS plastic. Early use of GRP in automobile manufacture included the roof of the Citroen DS (1955) and the body panels of the Chevrolet Corvette (1953). From the 1970s improved production processes engendered more widespread uses in architecture and interior design, whether in terms of weather resistant details and services or bathrooms.
Definition of FRP Composites
Not all plastics are composites. In fact, the majority of plastics today are pure plastic, like toys and soda bottles. When additional strength is needed, many types of plastics can be reinforced (usually with reinforcing fibers). This combination of plastic and reinforcement can produce some of the strongest materials for their weight that technology has ever developed...and the most versatile.
Therefore, the definition of a fiber-reinforced polymer (FRP) composite is:
A combination of
- a polymer (plastic) matrix (either a thermoplastic or thermoset resin, such as polyester, isopolyester, vinyl ester, epoxy, phenolic)
- a reinforcing agent such as glass, carbon, aramid or other reinforcing material
such that there is a sufficient aspect ratio (length to thickness) to provide a discernable reinforcing function in one or more directions. FRP composite may also contain:
- fillers
- additives
- core materials
that modify and enhance the final product. The constituent elements in a composite retain their identities (they do not dissolve or merge completely into each other) while acting in concert to provide a host of benefits ideal for structural applications including:
High Strength and Stiffness Retention - composites can be designed to provide a wide range of mechanical properties including tensile, flexural, impact and compressive strengths. And, unlike traditional materials, composites can have their strengths oriented to meet specific design requirements of an application.
-Light Weight/Parts Consolidation - FRP composites deliver more strength per unit of weight than most metals. In fact, FRP composites are generally 1/5th the weight of steel. The composite can also be shaped into one complex part, often times replacing assemblies of several parts and fasteners. The combination of these two benefits makes FRP composites a powerful material system- structures can be partially or completely pre-fabricated at the manufacturer's facility, delivered on-site and installed in hours.
-Creep (Permanent Deflection Under Long Term Loading) - The addition of the reinforcement to the polymer matrix increases the creep resistance of the properly designed FRP part. Creep will not be a significant issue if the loads on the structure are kept below appropriate working stress levels.
-Resistance to Environmental Factors - Composites display excellent resistance to the corrosive effects of:
-Freeze-thaw: because composites are not attacked by galvanic corrosion and have low water absorption, they resist the destructive expansion of freezing water.
-Weathering and Ultra-Violet Light: FRP composite structures designed for weather exposure are normally fabricated with a surface layer containing a pigmented gel coat or have an ultraviolet (UV) inhibitor included as an additive to the composite matrix. Both methods provide protection to the underlying material by screening out UV rays and minimizing water absorption along the fiber/resin interface.
-Chemicals and Temperature: Composites do not rust or corrode and can be formulated to provide long-term resistance to nearly every chemical and temperature environment. Of particular benefit, is composites ability to successfully withstand the normally destructive effects of de-icing salts and/or saltwater spray of the ocean.
-Fire Performance of Composites - FRP composites can burn under certain conditions. Composites can be designed to meet the most stringent fire regulations by the use of special resins and additives. Properly designed and formulated composites can offer fire performance approaching that of most metals.
Wednesday, June 20, 2007
Cable Block Diagram
Ia perlu dihasilkan dengan penuh tanggungjawab bagi memastikan ia dapat difahami dan diterjemahkan dengan mudah oleh setiap orang yang melihatnya.
Ia merupakan pemudah cara untuk menyemak setiap cable yang terdapat dalam sistem kawalan (DCS/IPS/FGS, dsbnya) , antara fakta yg perlu ada ialah:
· Cable Type
· Cable Size
· Originate
· Destination
· Maklumat goegrafi yang jelas
Bagaimana hendak menghasilkan Cable block Diagram:
· Perlu memahami system secara keseluruhan
· Perlu memahami jenis signal yang digunakan
· Perlu tahu jenis cable yang hendak digunakan
· Perlu tahu destinasi signal dan punca signal
· Perlu tahu kedudukkan setiap komponen dengan jelas
Tuesday, June 19, 2007
THE 4-20mA CURRENT LOOP
THE 4-20mA CURRENT LOOP
The 4-2OmA current loop has been with us for so longthat it's become rather taken for granted in the industrialand process sectors alike. Its popularity comes from itsease of use and its performance. However, just becausesomething is that ubiquitous doesn't mean we're allnecessarily getting the best out of our current loops.
A big benefit of the current loop is its simple wiring justthe two wires. The supply voltage and measuring currentare supplied over the same two wires. Zero offset of thebase current (ie. 4mA) makes cable break detection simple:if the current suddenly drops to zero, you have a cable break.In addition, the current signal is immune to any stray electricalinterference, and a current signal can be transmitted overlong distances.

Typical wiring for current output transducer.
You can think of the current loop itself as being analogousto a water system. You have a hose pipe (the wires) anda source tap (the power supply). You have a spray gunthat regulates the flow (the transducer). You can haveother equipment on the line, but it all has to be connectedtogether in a ring Ioop. The more holes (devices) you haveon the hose pipe, the higher the pressure will be requiredfrom the tap. Relating all that back to the current loop,you see a power supply, a transducer and one or morepieces of instrumentation all connected together in a ring.
You'll often hear things referred to as being either activeor passive. Some instruments have an active output whichincludes both the control of the current in the loop as wellas provide the supply voltage. This is typically specifiedas being a 4-20mA output into 10-750 Ohms, or somethingsimilar. A passive input would be a simple resistor input thathas a voltage drop to be factored into the equation oncethe supply voltage is chosen. This is typically specified asa 4-20mA input into 10 Ohm.
Working out the power supply requirement is a simple matterof adding up all the units in the loop at maximum currentof 20mA. As an example, suppose you have a sensor'regulator' which requires minimum 12V DC and instrumentationof 10 Ohm input:
10 Ohm x 20mA = 0.2V
So, for this circuit, a 12.2V minimum supply is required, thesensor's maximum voltage might be specified at 30V, so a24V supply would be all the circuit requirements with sparecapacity to boot.
In order to measure the current loop it is necessary to breakthe loop and insert a current meter into it. You can alsomeasure the voltage across the various components by inthe loop, such as the voltage out of the power supply, thevoltage over a sensor, and the voltages over the variouspieces of instrumentation. This information will give you agood picture of what is happening within the loop.

Multi-instrument 4-20mA current loop with panel meter,chart recorder, computers, etc.
A question which is sometimes asked is whether it is possibleto use single power supply over several loops. This is possible,but you have to ensure that the power supply can give enoughcurrent to meet the needs of multiple loops. It is also thecase that the current loops will have the same zero negativereference, which can cause a ground loop. In addition,interference from one loop can affect all the other loopsdriven from the one supply.
This article is printed with the kind permission ofMorten Moller, who runs an internet support andconsultancy business and can be contacted atmorten@askmorten.co.ukHis website is at http://www.askmorten.co.uk/
Installation Detail/Hook-up
Installation Detail atau sketch perlu memaparkan apa yang diperlukan untuk memasang sesuatu instrument.
Ini termasuk kesemua bahan (material) yang yang diperlukan untuk melengkapkan satu proses pemasangan (installation).
Maklumat dari pihak vendor adalah amat perlu bagi memastikan segala bahan yang diperlukan adalah sesuai dan sepadan dengan saiz connection yang diperlukan oleh instrument.
Designer jga perlu mengandaikan situasi dimana Tukang Pasang tidak biasa atau pertama kali memasang Instrument tersebut.


