Showing posts with label fibre. Show all posts
Showing posts with label fibre. Show all posts

Monday, April 19, 2010

Polyester History

Polyesters have been known from time immemorial. Even in antiquity man knew & used natural polyesters, known up to the present time more often as resins, such as dammar gum, shellac, yacca gum, copal, amber etc. These products find use even at the present day .

A long known form of polyesters is represented by widely used coatings, which various vegetable oils (linseed, tung etc.) form on drying in the air. However, the real blossoming of the chemistry & technology of polyesters is closely bound up with the development of methods for the production and synthesis of an enormous number of synthetic polymers, which represent a group of high molecular weight compounds. The first member of which was synthesized as long as 1833.

The first introductions for the synthesis of polyesters from hydroacids are due to Gay-Lussac & Palouze , who obtained a solid polymer on heating lactic acid. In 1861, Heintz obtained a polymer from glycolic acid by heating it to 240°C, subsequently, the preparation of polyglycollide was studied by Menshutkin , Dessaignes , Kelcule , Anschutz , Bischoff and Walden and others. Sokolov obtained three-dimensional polyester by polycondensation of glyceric acid.

Polyesters of polybasic acids & polyhydric alcohols was first synthesized by Berzelius , who reported in 1847 that on heating glycerol and tartaric acid a non-crystalline pliable mass was formed which on the heated state could be drawn into long filaments. Similar reaction was carried out by Berthelot between glycerol and sebacic and camphoric acids, and by van Bemmelen between glycerol and succinic & citric acid, Smith investigated reaction between glycerol and phthalic anhydride in 1901.

The first report on the preparation of polyesters by the polymerization of cyclic esters is due to Bischoff and Walden8 who converted cyclic ester glycollide into the polymer polycollide under influence of heat as well as in presence of traces of zinc chloride.

Menshutkin in 1881 was the first to apply kinetic methods to the investigation of the polyesterification reaction. He studied the esterification of ethylene glycol by succinic acid. In 1882, he determined the limiting degree of esterification of glycolic, lactic and dimethgycollic acids.

A particularly pronounced development in the investigation of synthetic polyesters occurred after 1925, when the work of Tilicheyev , Maksorov , Carothers , Kienel and others led to the synthesis of a series of new compounds of this type, they also demonstrated the possibility of the wide practical application of the polyesters in the industry.

Carothers and his coworkers pioneered the work on synthetic fibres. They first produced spinnable polyester of high molecular weight by condensing ,-diols with alkanedioic acid. Carothers and Hill jointly succeeded in carrying out the polycondensatoin as part of molecular distillation or simply by passing nitrogen through the condensation melt until a fibre forming polyester resulted.

In the early 1940’s the Calico Printer Association Ltd. began to study the effect of molecular symmetry on the condensation polymers. Schlack , in Germany and Whinfield and Dickson , in Great Briton used dicarboxylic acids for the production of polyester fibres almost at the same time. While Schlack used terephthalic acid and 1,4-butandiol, Whinfield and Dickson used combination of terephthalic acid and ethylene glycol.

Fibre forming aliphatic polyesters was produced in the early 1930s, but these products had low melting points and were unsuitable for commercial use17. Laboratory scale quantities of polyethylene terephthalate were prepared by 1941 in Britain. E. I. du Pont de Nemours Co. Inc . acquired US patent rights for PET in 1948, and Imperial Chemical Industries (ICI) of the UK obtained patent rights for the rest of the world. The World War II considerably retarded any further developments so that large-scale production of polyester fibres in different countries was not started until the 1950’s. In Britain the manufacture of polyethylene terephthalate fibres began on a pilot scale in 1948. The fibre being marketed as Terylene. Since then the production of Terylene was extended rapidly.

Polyester fibres became available commercially in the United States in 1953, and production expanded enormously in 1960s and 1970s. At Wilton, in Yorkshire, ICI started a large plant with annual capacity of 11 million lbs. divided equally between filament yarn and staple. In 956, a second unit of similar capacity began production and a new Terylene plant in Northern Ireland followed this .

Thursday, April 30, 2009

Fibre Classification, Cotton fibre 1

What is Fibre

Fibre is a unit matter, which possesses the properties of fineness, flexibility and a high ratio of length to thickness to be used in textile. It is a smallest unit used in a textile structure. It may be combined with others to make yarn or fabric.


Classification of Textile Fibres Based on Origin
Classification of Textile Fibres based on its chemical constitution



Cotton Fibre

- It is Natural, Vegetable, Cellulosic fibre

- It is the Oldest fibre reportedly found in found in Indus valley

- Account for more than 50% of total world fibre production

- Botanically belongs to Gossypium Family

- Productive regions accdg. to importance

1. US 2. India 3. Russia 4. Brasil 5. Egypt 6. China



Saturday, June 21, 2008

lyocell tencel

Lyocell is a man-made cellulosic fiber. It is produced by solvent spinning, i.e., regenerating into fiber form out of a cellulose solution in an organic solvent. It is made up of cellulose and derived from plant sources like wood pulp. For the solution spinning of lyocell fiber the wood pulp is first dissolved at 90 to 1200 C in a solvent NMMO (N-methyl morpholine N- oxide) under normal pressure to form viscose solution. The solution thus obtained is then filtered and extruded by means of fine jet into a water bath; here the regeneration of cellulose takes place resulting in the formation of fiber. The cellulose is regenerated after passing through an air gap into spinning bath. Finally, the fiber is drawn off with appropriate stretching followed by washing, drying and winding of the fiber. With the higher spinning speeds it is possible to produce fine deniers.

Properties of lyocell/tencel

It is the strongest of all the cellulosic fibers. It has a reduction of 15% of wet strength and hence gives an edge over the others. Tenacity lies in the range of 38-42 cN/Tex.
The ratio of crystalline to amorphous area is approximately around 9:1.
they are soft and lustrous. They show good drape and fluidity.
they are highly stable at high temperature. It does not melt but starts loosing strength rapidly at 3000 C and finally gets ignited at 4200 C
Tencel is inert to most of the organic solvents.
However, it degrades in the presence of hot dilute or cold concentrated mineral acid.
Alkalies causes swelling at first (max. at 9% NaOH solution, 250C) and then ultimately disintegration

Tuesday, June 10, 2008

Spider silk

Du pont is working on synthetic or spider silk and in 1998 published a report about silk they had spun. they found that the molecular orientation of the synthetic silk is very much similar to that of natural silk, whereas in synthetic silk the crystal regions were larger and apart as compared with natural silk. the fibers contained only one or two main proteins that make up drag line silk. and due to these factors the synthetic fibers had lower strength. the studies of du pont does show that synthetic spider silk is a worthwhile endeavor.

Friday, May 2, 2008

Wool Fiber

The word wool was wull in Old English, wullo in Teutonic, and wlna in pre-Teutonic days. Wool is the fiber from the fleece of domesticated sheep. It is a natural, protein, multicellular, staple fiber. The fiber density of wool is 1.31 g/cm3, which tends to make wool a mecfiurn weight fiber.


The wool fiber is a crimped, fine to thick, regular fiber. Fine wools may have as many as 10 crimps per centimeter, whilst coarse wools have less than 4 crimps per 10 centimeters. As the diameter of wool fibers increases, the number of crimps per unit length increases. The number of crimps per unit length may be taken as an indication of wool fiber diameter or wool fiber fineness.

Wool fibers may vary from off-white to light cream in colour. This variation in colour is due to the disulphide bonds which seem to be able to act as chromophores. As a result the incident light may be modified to cause the reflected light to have a tinge of yellow, giving the wool fibers their off-white appearance. When the fiber is cream to dark cream in colour, this is due more to polymer degradation on the surface of the fiber. This can readily occur, as the wool polymer is chemically very sensitive to atmospheric oxygen and air pollutants.

Fibre length to breadth ratio can be critical with wool, since the short, coarse fibers spin into less attractive yarns than do those of fine wools. In general, fiber length to breadth ratio ranges from 2500:1 for the finer, shorter wools to about 7500:1 for the coarser, longer wools.


Tuesday, April 29, 2008

Pilling of garment

Pilling is a garment surface fault characterized by little pills of entangled fibre and clinging to the cloth surface and giving the garment an unsightly appearance. The pills are formed during wear and washing by the entanglement of loose fibre, which protrude from the fabric surface, under the influence of rubbing action. These loose fibres develop into small spherical bundles anchored to the fabric by a unbroken fibres.

Polyester, PAN, nylon etc are strong fibre and pills forms on the garment made out of these fibres accumulate more and more making garment more unsightly.

To minimize pilling tendency, higher twist factor for yarns, the brushing and cropping of fabric surface and special chemical treatments can be used. Also, increasing the filament denier can also minimize the pilling tendency of the garments.

Friday, April 18, 2008

Dye carriers

Dye carriers are accelerators that assist in the dyeing of synthetic fabrics in a shorter time at a lower temperature. They are particularly used for dyeing polyesters with disperse dyes, although they were originally developed for cellulose acetate. There are a number of carriers commonly used for polyester fibres. Some of the good dye carriers are o-phenyl phenol and it’s monochloro derivative, p-phenyl phenol, diphenyl, monomethyl naphthalene, trichlorobenzene, dimethyl terephthalate and methyl salicylate. Other dye carriers in common usage are o-dichlorobenzene, diphenyl ether, n-butyl phthalimide, chloromethoxy ethanol, methyl cresotinate, alkyl and aryl benzoates and tetralin. The dye carrier imbibes deep shades on the polyester and blended fabrics. Acrylic and nylon fibers also can be dyed using dye carriers but this approach is more expensive than the other alternatives available.
In practice, the choice of the dye carrier is governed by its general effectiveness, toxicity, economics and environmental acceptance. Some of the phenolics and chloro-derivatives are getting eliminated. In a typical operation for dyeing polyester fiber, the dye carrier suitably emulsified in water is used in both the exhaust method at atmospheric pressure as well as in high temperature beam dyeing. After dyeing, the dye carrier is removed from the fabric by an after-scouring process. Whereas dye carriers like the chlorobenzenes are used by emulsification, the phenyl phenols can be used as their water soluble sodium salts along with an acid-liberating agent like ammonium phosphate. At about 100C, the free phenol liberated forms the active carrier which is later removed by alkaline scouring. Butyl benzoate is another successful carrier for use in polyester dyeing at the boil at atmospheric pressure.
The dye carriers are generally used with a leveling agent on polyester/wool mixtures in a high temperature process. The formulations usually consist of around 70% active ingredients (one or more dye carriers), 15% leveling agent and 15% solubilising agent. Depending on the color and shade, the dye carrier used is in a variable range of 2-10% of the textile weight.

author : Laxmikant S. Jawale

Thursday, January 10, 2008

Industrial Conquerors

Industrial Conquerors

The spectrum of application of the textile fibres has been broadened with the advent of areas like Geo – Textiles, Industry, and Building – construction, Medical field, Automotives, Agriculture, Sports, Clothing, and Packaging have widened the reign of textile fibres-The Emperors of Industry. This paper discusses the properties of the textile fibres, which are necessary for their application in the industry as technical textile. Some of the most widely used textile fibres are reviewed in brief. The application of the textile fibres in various fields in the industry has made them the conquerors in the technical textile sector. The industrial applications of the textile fibres include reinforcements in the tires, and plastics, electrical insulations, industrial ropes, coated fabrics, filtration fabrics, etc. The paper puts light on each of these applications in brief. Various fibres used for the reinforcement in the tire have also been discussed. However, the cost of these fibres has confined their applications so there is an urgent need of developments in this field to develop novel processes, which can reduce the cost of production of the fibres, so the application can be extended further.