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IJRET: International Journal of Research in Engineering and Technology eISSN: 2319-1163 | pISSN: 2321-7308
__________________________________________________________________________________________
Volume: 03 Issue: 01 | Jan-2014, Available @ http://www.ijret.org 108
EFFECT OF NAOH MERCERISATION ON THE CROSS LINKING OF
CONVENTIONAL AND COMPACT COTTON YARNS USING DMDHEU
RESIN
Shabiya Thaseen
Department of Home Science, Textile Science and Fashion Designing, J.B.A.S. College for Women
Teynampet, Chennai - 600 018
Abstract
An investigation of the effect of resin finishing on the properties of conventional and compact cotton yarn is reported. It is shown that
compact yarns suffer greater weight losses than those of conventional yarns following cross linking treatment. Bending rigidity shows
an increase with the concentration of sodium hydroxide prior to cross linking in both conventional and compact yarns. The yarn
structure also plays an important role in resin finishing.
----------------------------------------------------------------------***--------------------------------------------------------------------
1. INTRODUCTION
Durable press finishing processes are used in the textile
industry to produce wrinkle resistant cotton fabrics and
garments. The finishing agents used are N-methylol reagents
such as dimethylol dihydroxy ethylene urea (DMDHEU)
which were conventional durable press finishing agents.
Recently, the use of polycarboxylic acids such as 1,2,3,4-
butane-tetra carboxylic acids (BTCA) and citric acid, tartaric
acid, maleic acid and itaconic acid due to increasing concern
with toxicity and the adverse impact on the environment by
formaldehyde has become widespread (1,2,3,4).
A durable press finishing agent forms covalent bonds with
cellulosic hydroxyl groups under elevated temperatures, thus
forming cross linkages between the cellulose molecules. Cross
linking normally leads to an improvement in wrinkle
resistance and reduces the strength of cotton fabric. Wrinkle
recovery and tensile strength are the two principal parameters
which are used to assess the performance of the cross linked
cotton fabrics.
Yang et al (5) have conducted detailed research on the
nonformaldehyde finishes and their results are quite useful.
Formation of anhydroxide with sodium hypophosphite as a
catalyst and chemical analysis of 1, 2, 3, 4 - Butane tetra
carboxylic acid using FTIR and FT-Raman Spectroscopy,
proton magnetic resonance spectroscopy (1H-NMR) mass
spectroscopy (MS) and liquid chromatography mass
spectroscopy LC/MS have been carried out. All the
instrumental analysis data indicate the low level of impurities
in the industrial BTCA Yang is credited with a number of
papers on the analysis of BTCA treated fabrics.
In this paper, the effect of cross linking on the performance of
conventional and compact cotton yarns is discussed using
DMDHEU. The yarn characteristics namely, yarn strength,
elongation and bending were measured for the treated
conventional and compact yarns. This work provides the basic
data to know and understand the role of anticreasing yarns in
the fabric. Although it is rather unusual to apply resin finishes
to yarns, nevertheless in order to gain some basic knowledge
this work was carried out. Moreover, it is of interest to know
the response of yarn structure to resin treatments.
2. EXPERIMENTAL
2.1 Materials
Yarns of 30 Ne produced by conventional and compact
spinning technologies from the same cotton mixing were used.
They were bleached. DMDHEU and catalyst were used. The
prepared yarns in hank form were immersed in DMDHEU
formulation for 10 minutes. Triton X-100, 1% PEG 400 and
1.8% magnesium chloride hexahydrate.
DMDHEU is the most commonly used crosslinking agent and
contains urea, formaldehyde and glyoxal. The two methylol
groups and the two hydroxyl groups of DMDHEU react with
cellulosic hydroxyl to form cross linkages between cellulose
molecules. The yarns were treated with DMDHEU solution
for 10 minutes at concentrations namely 80, 100, 120 and 130
gpl. The wet pick up of the impregnated yarns was in the
range of 100-105%. The yarns following impregnation were
dried at 100C in a forced air oven and cured at 160C for 3
min, and washed with 5 gpl Na2CO3 at 50C for 5 minutes to
remove the untreated chemicals then rinsed to remove the
reagent not bound to the cotton yarns and dried.
IJRET: International Journal of Research in Engineering and Technology eISSN: 2319-1163 | pISSN: 2321-7308
__________________________________________________________________________________________
Volume: 03 Issue: 01 | Jan-2014, Available @ http://www.ijret.org 109
A portion of conventional and compact yarns was treated with
sodium hydroxide at various concentrations and subsequently
cross linked with DMDHEU. This was done to find out the
effect of concentration of NaOH on the efficacy of cross
linking. In the earlier case, they were treated with 20% NaOH.
The cured yarns were evaluated for strength and elongation
using Uster Tensorapid tester. They were also tested for
bending rigidity.
2.2 Bending Rigidity
Bending rigidity was measured by using Ring-loop method
developed by Carlene (7). In this method, a length of yarn of
filament is bent through 360 to form a ring. The ends are
gripped and the distortion produced in the ring shape by some
externally applied weight is observed. In these conditions, the
flexural rigidity G is given by the equation.
2 cos
G KWL
tan



where,
K = a constant the value of which is around 0.0047
W = applied load in mg
L = Circumferential length of undistorted ring in cm
493d
L
 
d = deflection of lower end of the ring under action of applied
load. For grater sensitivity, a value of W is chosen that  lies
between 40 and 50. When W is given in grams and L and d
in centimetres, the flexural rigidity is expressed in g.cm2. For
each sample, ten tests were done and the average was taken.
Full details are given in the thesis (6).
3. RESULTS AND DISCUSSION
The results included in Table 1 show that the strength losses
following resin finish are greater (28%) for compact yarns in
comparison with conventional yarns (10%) elongation shows
an increase with increase in resin content.
Table 2 gives the results of tenacity and elongation of
conventional and ompact yarns mercerised in slack form at
different concentrations. Elongation shows an increase with
increase in the concentration of sodium hydroxide. This is due
to shrinkage of yarns following mercerisation.
Tensile properties of conventional and compact yarns which
were slack mercerised at different concentrations and cross
linked are shown in Table 3. There is a significant drop in
strength of cross linked compact yarn in comparison with
conventional yarns. Elongation shows an increase in both the
yarns.
Cross linking of cotton cellulose molecules causes fibre
embrittlement which results in loss in strength.
Table 1 Tensile properties of conventional and compact yarns cross linked by DMDHEU
Conventional Compact
Tenacity
(cN/tex)
Elongation
%
Tenacity
(cN/tex)
Elongation
%
Control 17.21 4.66 18.49 5.14
80 GPL 14.86 6.65 15.05 6.64
100 GPL 16.22 7.06 14.72 6.21
120 GPL 14.8 6.51 14.56 6.47
130 GPL 15.47 6.62 14.98 6.35
Table 2 Effect of concentration of alkali on the conventional and compact yarn characteristics
Conc. of NaOH %
Conventional Compact
Tenacity
(cN/tex)
Elongation
%
Tenacity
(cN/tex)
Elongation
%
0 17.21 4.66 18.49 5.14
4 17.33 5.12 18.52 5.42
IJRET: International Journal of Research in Engineering and Technology eISSN: 2319-1163 | pISSN: 2321-7308
__________________________________________________________________________________________
Volume: 03 Issue: 01 | Jan-2014, Available @ http://www.ijret.org 110
8 17.86 5.41 18.62 5.48
12 17.92 5.45 18.54 6.21
14 18.21 6.32 18.32 6.34
16 18.32 7.4 18.28 6.45
18 18.56 8.6 18.41 7.48
20 18.96 9.9 18.56 8.92
Table 3 Tensile and bending properties of conventional and compact cotton yarn treated by NaOH with zero tension and cross linked
by DMDHEU
Conc. of
NaOH %
After cross linking (conventional)
After cross linking
(compact)
Tenacity
(cN/tex)
Elongation
%
Bending
rigidity
(mN.mm2)
Tenacity
(cN/tex)
Elongation
%
Bending
rigidity
(mN.mm2)
0 17.04 4.21 1.5 18.32 4.82 1.6
4 16.82 5.01 2.0 17.86 4.68 2.1
8 16.72 4.89 2.2 17.72 4.52 2.3
12 16.34 5.21 2.5 16.84 4.62 2.7
14 15.89 5.11 2.8 17.28 4.68 2.7
16 15.32 5.09 3.0 17.44 4.56 3.4
18 18.72 5.12 3.2 17.28 4.61 3.6
20 19.36 8.6 3.5 16.84 4.72 3.8
The reason for the drop in strength in the case of compact yarn
can be due to greater embrittlement following resin treatment.
Since the packing coefficient is higher in compact yarns,
following resin treatment the material becomes still more
compact which leads to greater strength losses.
3.1 Bending Rigidity
It is apparent that flexural rigidity increases with an increase
in concentration of sodium hydroxide prior to the resin
treatment for conventional and compact yarns. This is due to
no freedom of motion of fibres in the resin treated yarns as
pointed out by Backer (9). The bending moment is higher in
the case of no freedom of motion. Platt (8) also computed the
bending moment for the case of no freedom of motion.
CONCLUSIONS
This study mainly investigates the effect of NaOH
mercerisation on the crosslinking properties of cotton yarns
made by conventional and compact spinning technologies.
Compact yarns suffer great strength losses than conventional
yarns. The results show that mercerisation has a considerable
effect on crosslinking properties such as tensile strength and
elongation of yarns. Further studies on fabrics made out of
these yarns are in progress, and the results will be reported
later.
ACKNOWLEDGEMENTS
The author would like to acknowledge her indebtedness to Dr.
Venkatraman Subramaniam, Jaya Engineering College,
Chennai for his various advices.
IJRET: International Journal of Research in Engineering and Technology eISSN: 2319-1163 | pISSN: 2321-7308
__________________________________________________________________________________________
Volume: 03 Issue: 01 | Jan-2014, Available @ http://www.ijret.org 111
REFERENCES
[1] Yang, C.Q., and Bakshi, G.D., Quantitative analysis
of the nonformaldehyde durable press finish on
cotton fabric - Acid-base titration and infrared
spectroscopy, Textile Res. J., 66(6), 1996, 377-384.
[2] Edwin Sunder, E. and Nalankilli, G., Polyfunctional
finishes on cotton textiles. Ind. J. Fib and Text Res.,
37, 2012, 364-371.
[3] Welch, C.M., Tetracarboxylic acid as formaldehyde -
free durable press finishing agents, Textile Res. J.,
58(8), 1988, 480-486.
[4] Yang, C.Q., Lu, Y. and Lickfield, G.C., Chemical
analysis of 1,2,3,4-Butane tetracarboxylic acid,
Textile Res J., 72(9), 2002, 817-824.
[5] Yang, C.Q. and Wang, X., “Applications of FT-IR
spectroscopy to the studies of esterification and
crosslinking of cellulose by polycarboxylic acids,
Part II. The performance of the crosslinked cotton
fabrics”, in Fourier Transform Spectroscopy Eleventh
International Conference James A. De Haseth Ed.,
American Institute of Physics, Woodbury, New York,
1998, pp.665-669.
[6] Shabiya Thaseen, “An investigation of the yarn
characteristics of conventional and compact cotton
yarns and dyeing behaviour of man made cellulosic
fabrics”, Ph.D., Thesis, Mother Teresa Women’s
University, Kodaikanal, 2011.
[7] Carlene, P.W., “The relation between fibre and yarn
flexural rigidity in continuous filament viscose yarns”,
J. Text. Inst., Vol.41, No.5, 1950, T159-T171.
[8] Platt, M.M., Klein, W.G., Hamburger, W.J., Some
aspects of bending rigidity of single yarns”, Textile
Res J., 29, 1959, 611.
[9] Backer, S., “The mechanics of bent yarns”, Textile
Res. J., 22, 1952, 668.

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Effect of naoh mercerisation on the cross linking of conventional and compact cotton yarns using dmdheu resin

  • 1. IJRET: International Journal of Research in Engineering and Technology eISSN: 2319-1163 | pISSN: 2321-7308 __________________________________________________________________________________________ Volume: 03 Issue: 01 | Jan-2014, Available @ http://www.ijret.org 108 EFFECT OF NAOH MERCERISATION ON THE CROSS LINKING OF CONVENTIONAL AND COMPACT COTTON YARNS USING DMDHEU RESIN Shabiya Thaseen Department of Home Science, Textile Science and Fashion Designing, J.B.A.S. College for Women Teynampet, Chennai - 600 018 Abstract An investigation of the effect of resin finishing on the properties of conventional and compact cotton yarn is reported. It is shown that compact yarns suffer greater weight losses than those of conventional yarns following cross linking treatment. Bending rigidity shows an increase with the concentration of sodium hydroxide prior to cross linking in both conventional and compact yarns. The yarn structure also plays an important role in resin finishing. ----------------------------------------------------------------------***-------------------------------------------------------------------- 1. INTRODUCTION Durable press finishing processes are used in the textile industry to produce wrinkle resistant cotton fabrics and garments. The finishing agents used are N-methylol reagents such as dimethylol dihydroxy ethylene urea (DMDHEU) which were conventional durable press finishing agents. Recently, the use of polycarboxylic acids such as 1,2,3,4- butane-tetra carboxylic acids (BTCA) and citric acid, tartaric acid, maleic acid and itaconic acid due to increasing concern with toxicity and the adverse impact on the environment by formaldehyde has become widespread (1,2,3,4). A durable press finishing agent forms covalent bonds with cellulosic hydroxyl groups under elevated temperatures, thus forming cross linkages between the cellulose molecules. Cross linking normally leads to an improvement in wrinkle resistance and reduces the strength of cotton fabric. Wrinkle recovery and tensile strength are the two principal parameters which are used to assess the performance of the cross linked cotton fabrics. Yang et al (5) have conducted detailed research on the nonformaldehyde finishes and their results are quite useful. Formation of anhydroxide with sodium hypophosphite as a catalyst and chemical analysis of 1, 2, 3, 4 - Butane tetra carboxylic acid using FTIR and FT-Raman Spectroscopy, proton magnetic resonance spectroscopy (1H-NMR) mass spectroscopy (MS) and liquid chromatography mass spectroscopy LC/MS have been carried out. All the instrumental analysis data indicate the low level of impurities in the industrial BTCA Yang is credited with a number of papers on the analysis of BTCA treated fabrics. In this paper, the effect of cross linking on the performance of conventional and compact cotton yarns is discussed using DMDHEU. The yarn characteristics namely, yarn strength, elongation and bending were measured for the treated conventional and compact yarns. This work provides the basic data to know and understand the role of anticreasing yarns in the fabric. Although it is rather unusual to apply resin finishes to yarns, nevertheless in order to gain some basic knowledge this work was carried out. Moreover, it is of interest to know the response of yarn structure to resin treatments. 2. EXPERIMENTAL 2.1 Materials Yarns of 30 Ne produced by conventional and compact spinning technologies from the same cotton mixing were used. They were bleached. DMDHEU and catalyst were used. The prepared yarns in hank form were immersed in DMDHEU formulation for 10 minutes. Triton X-100, 1% PEG 400 and 1.8% magnesium chloride hexahydrate. DMDHEU is the most commonly used crosslinking agent and contains urea, formaldehyde and glyoxal. The two methylol groups and the two hydroxyl groups of DMDHEU react with cellulosic hydroxyl to form cross linkages between cellulose molecules. The yarns were treated with DMDHEU solution for 10 minutes at concentrations namely 80, 100, 120 and 130 gpl. The wet pick up of the impregnated yarns was in the range of 100-105%. The yarns following impregnation were dried at 100C in a forced air oven and cured at 160C for 3 min, and washed with 5 gpl Na2CO3 at 50C for 5 minutes to remove the untreated chemicals then rinsed to remove the reagent not bound to the cotton yarns and dried.
  • 2. IJRET: International Journal of Research in Engineering and Technology eISSN: 2319-1163 | pISSN: 2321-7308 __________________________________________________________________________________________ Volume: 03 Issue: 01 | Jan-2014, Available @ http://www.ijret.org 109 A portion of conventional and compact yarns was treated with sodium hydroxide at various concentrations and subsequently cross linked with DMDHEU. This was done to find out the effect of concentration of NaOH on the efficacy of cross linking. In the earlier case, they were treated with 20% NaOH. The cured yarns were evaluated for strength and elongation using Uster Tensorapid tester. They were also tested for bending rigidity. 2.2 Bending Rigidity Bending rigidity was measured by using Ring-loop method developed by Carlene (7). In this method, a length of yarn of filament is bent through 360 to form a ring. The ends are gripped and the distortion produced in the ring shape by some externally applied weight is observed. In these conditions, the flexural rigidity G is given by the equation. 2 cos G KWL tan    where, K = a constant the value of which is around 0.0047 W = applied load in mg L = Circumferential length of undistorted ring in cm 493d L   d = deflection of lower end of the ring under action of applied load. For grater sensitivity, a value of W is chosen that  lies between 40 and 50. When W is given in grams and L and d in centimetres, the flexural rigidity is expressed in g.cm2. For each sample, ten tests were done and the average was taken. Full details are given in the thesis (6). 3. RESULTS AND DISCUSSION The results included in Table 1 show that the strength losses following resin finish are greater (28%) for compact yarns in comparison with conventional yarns (10%) elongation shows an increase with increase in resin content. Table 2 gives the results of tenacity and elongation of conventional and ompact yarns mercerised in slack form at different concentrations. Elongation shows an increase with increase in the concentration of sodium hydroxide. This is due to shrinkage of yarns following mercerisation. Tensile properties of conventional and compact yarns which were slack mercerised at different concentrations and cross linked are shown in Table 3. There is a significant drop in strength of cross linked compact yarn in comparison with conventional yarns. Elongation shows an increase in both the yarns. Cross linking of cotton cellulose molecules causes fibre embrittlement which results in loss in strength. Table 1 Tensile properties of conventional and compact yarns cross linked by DMDHEU Conventional Compact Tenacity (cN/tex) Elongation % Tenacity (cN/tex) Elongation % Control 17.21 4.66 18.49 5.14 80 GPL 14.86 6.65 15.05 6.64 100 GPL 16.22 7.06 14.72 6.21 120 GPL 14.8 6.51 14.56 6.47 130 GPL 15.47 6.62 14.98 6.35 Table 2 Effect of concentration of alkali on the conventional and compact yarn characteristics Conc. of NaOH % Conventional Compact Tenacity (cN/tex) Elongation % Tenacity (cN/tex) Elongation % 0 17.21 4.66 18.49 5.14 4 17.33 5.12 18.52 5.42
  • 3. IJRET: International Journal of Research in Engineering and Technology eISSN: 2319-1163 | pISSN: 2321-7308 __________________________________________________________________________________________ Volume: 03 Issue: 01 | Jan-2014, Available @ http://www.ijret.org 110 8 17.86 5.41 18.62 5.48 12 17.92 5.45 18.54 6.21 14 18.21 6.32 18.32 6.34 16 18.32 7.4 18.28 6.45 18 18.56 8.6 18.41 7.48 20 18.96 9.9 18.56 8.92 Table 3 Tensile and bending properties of conventional and compact cotton yarn treated by NaOH with zero tension and cross linked by DMDHEU Conc. of NaOH % After cross linking (conventional) After cross linking (compact) Tenacity (cN/tex) Elongation % Bending rigidity (mN.mm2) Tenacity (cN/tex) Elongation % Bending rigidity (mN.mm2) 0 17.04 4.21 1.5 18.32 4.82 1.6 4 16.82 5.01 2.0 17.86 4.68 2.1 8 16.72 4.89 2.2 17.72 4.52 2.3 12 16.34 5.21 2.5 16.84 4.62 2.7 14 15.89 5.11 2.8 17.28 4.68 2.7 16 15.32 5.09 3.0 17.44 4.56 3.4 18 18.72 5.12 3.2 17.28 4.61 3.6 20 19.36 8.6 3.5 16.84 4.72 3.8 The reason for the drop in strength in the case of compact yarn can be due to greater embrittlement following resin treatment. Since the packing coefficient is higher in compact yarns, following resin treatment the material becomes still more compact which leads to greater strength losses. 3.1 Bending Rigidity It is apparent that flexural rigidity increases with an increase in concentration of sodium hydroxide prior to the resin treatment for conventional and compact yarns. This is due to no freedom of motion of fibres in the resin treated yarns as pointed out by Backer (9). The bending moment is higher in the case of no freedom of motion. Platt (8) also computed the bending moment for the case of no freedom of motion. CONCLUSIONS This study mainly investigates the effect of NaOH mercerisation on the crosslinking properties of cotton yarns made by conventional and compact spinning technologies. Compact yarns suffer great strength losses than conventional yarns. The results show that mercerisation has a considerable effect on crosslinking properties such as tensile strength and elongation of yarns. Further studies on fabrics made out of these yarns are in progress, and the results will be reported later. ACKNOWLEDGEMENTS The author would like to acknowledge her indebtedness to Dr. Venkatraman Subramaniam, Jaya Engineering College, Chennai for his various advices.
  • 4. IJRET: International Journal of Research in Engineering and Technology eISSN: 2319-1163 | pISSN: 2321-7308 __________________________________________________________________________________________ Volume: 03 Issue: 01 | Jan-2014, Available @ http://www.ijret.org 111 REFERENCES [1] Yang, C.Q., and Bakshi, G.D., Quantitative analysis of the nonformaldehyde durable press finish on cotton fabric - Acid-base titration and infrared spectroscopy, Textile Res. J., 66(6), 1996, 377-384. [2] Edwin Sunder, E. and Nalankilli, G., Polyfunctional finishes on cotton textiles. Ind. J. Fib and Text Res., 37, 2012, 364-371. [3] Welch, C.M., Tetracarboxylic acid as formaldehyde - free durable press finishing agents, Textile Res. J., 58(8), 1988, 480-486. [4] Yang, C.Q., Lu, Y. and Lickfield, G.C., Chemical analysis of 1,2,3,4-Butane tetracarboxylic acid, Textile Res J., 72(9), 2002, 817-824. [5] Yang, C.Q. and Wang, X., “Applications of FT-IR spectroscopy to the studies of esterification and crosslinking of cellulose by polycarboxylic acids, Part II. The performance of the crosslinked cotton fabrics”, in Fourier Transform Spectroscopy Eleventh International Conference James A. De Haseth Ed., American Institute of Physics, Woodbury, New York, 1998, pp.665-669. [6] Shabiya Thaseen, “An investigation of the yarn characteristics of conventional and compact cotton yarns and dyeing behaviour of man made cellulosic fabrics”, Ph.D., Thesis, Mother Teresa Women’s University, Kodaikanal, 2011. [7] Carlene, P.W., “The relation between fibre and yarn flexural rigidity in continuous filament viscose yarns”, J. Text. Inst., Vol.41, No.5, 1950, T159-T171. [8] Platt, M.M., Klein, W.G., Hamburger, W.J., Some aspects of bending rigidity of single yarns”, Textile Res J., 29, 1959, 611. [9] Backer, S., “The mechanics of bent yarns”, Textile Res. J., 22, 1952, 668.