[0001] The present invention relates to paper production and, in particular, to the production
of cellulose pulp for use in papermaking.
[0002] Nowadays, paper production is based fundamentally upon the use of plants and trees
as the source of fibrous raw materials and upon the processing of recycled paper materials,
whereas the use of rags, which for centuries were used as the basic raw material,
has now in practice become obsolete.
[0003] Fibrous materials means vegetable fibres, that is, the thread-like cells constituting
the body of the toughest plant tissues which are destined to form the framework of
a future sheet of paper. The criterion by which the suitability of a plant or tree
for the production of fibrous material for paper may be judged is very complex and
has to take account of both quantitative and qualitative parameters, the most important
of which is the amount of cellulose it contains. Moreover, extraction should be easy,
the fibres should have suitable technical characteristics and the plant or tree should
not have intense coloration or unpleasant odours; amongst the technical characteristics,
the tensile index, the tear factor, the bursting index and the freeness are of fundamental
importance.
[0004] Plants and trees used for the production of paper and paper materials can be divided
into three main, large categories:
1. Conifers: these include various types, amongst which the best known and the most
used are the genus pinus (pine) and the genus abies (fir); conifer wood contains approximately
50% cellulose, 30% lignin, 15% hemicellulose, and 5% numerous components such as resin,
terpene compounds, fatty acids, etc.; conifers are the trees which are used most and
which are most suitable for paper production, providing the best "technical cellulose",
which is characterized by fibres several millimetres long which impart considerable
mechanical strength to the sheet and have a considerable tendency to form fibrils
so that they impart considerable compactness and homogeneity to the future sheet of
paper.
2. Broad-leaved trees: until about thirty years ago, these were considered by paper-makers
as secondary to conifers since the papers thus produced were not distinguished by
good mechanical strength; only recently, as a result of improvements in working techniques,
have broad-leaved trees started to be used in the papermaking industry and, currently,
they constitute one of the main sources of cellulose.
The broad-leaved trees normally used in the papermaking industry are: poplar, birch,
chestnut and beech.
3. Annual plants: annual plants, amongst which straw has mainly been considered in
the past (today, straw seems to have been practically abandoned) and which include
plants such as, for example, kenaf, bamboo, flax and hemp, generally have a lower
cellulose content than the woods of coniferous and broad-leaved trees, in most cases,
no more than 35%. Annual plants are actually considered a poor substitute for wood
as far as their use in the papermaking industry is concerned; this is due not only
to their low cellulose content but, in particular, to problems connected with harvesting
difficulties and transportation costs and, moreover, with the fact that the papers
produced therefrom are distinguished by particularly poor technical characteristics.
[0005] However, continual and incessant usage of plurannual woody plants and trees such
as coniferous and broad-leaved trees is causing increasing environmental problems
since, although deforestation is carried out rationally and systematically, it now
greatly exceeds the spontaneous increase in the sprouting-up and development of trees,
which is leading to alteration of the ecosystem not only in the regions affected directly
but also in the entire planet. In order to solve this worrying and disturbing problem,
counter-measures of various kinds have been adopted; whereas, on the one hand, rational
planting is continuously carried out on deforested land and on other, suitably prepared
land, on the other hand, efforts are being made by means of suitable initiatives such
as, for example, advertising campaigns and the like, to sensitize public opinion towards
a usage of paper and of cellulose derivatives more generally, aimed at and limited
to the absolutely necessary, and towards an increasing use of "recycled paper" and
consequent differentiated waste disposal so as to enable paper to be recycled conveniently
and economically. In addition, research is now directed ever more towards the establishment
of working techniques which can increase yields and thus reduce wood consumption and
towards the finding of alternative sources of cellulose to plurannual plants and trees.
However, these factors have to take account of the increasing requirement for "highly
technical" papers which anyway makes it practically impossible to use annual plants
which, precisely because of their annual or even seasonal cyclicity, could constitute
an optimal solution to the problem.
[0006] It has now surprisingly been found and constitutes the subject of the present invention
that, the processing of the annual plant commonly known as Luffa cylindrica (or Luffa
aegyptiaca) produces a cellulose pulp with analytical characteristics decidedly better
than those of normal annual plants and, in some aspects, even better than those of
coniferous and broad-leaved trees, rendering its use in the paper industry particularly
advantageous.
[0007] Luffa cylindrica is an annual herbaceous plant belonging to the Cucurbitaceae family;
Luffa is a creeping, climbing, monoecious plant with unisexual flowers and with stems
which may reach lengths of 4-8 m; the leaves are petiolate, simple, alternate, from
tri- to hepta-lobate, and 10-15 cm long; the flowers are conspicuous, large (5-10
cm) with a corolla formed by five yellow petals. The fruit is a pepo, dry when mature,
cylindrical or only slightly angular, of very variable dimensions (typically 30-60
cm long and 10-20 cm diameter), and straight or curved; when mature, it has a dry
and papery epicarp with a fibrous and spongy endocarp owing to the disappearance of
the pulp and the persistence solely of the fibro-vascular bundles. A fruit contains
on average 200-500 seeds about 10-15 mm long and each weighing about 0.1g; the fibrous
reticulum of the mature fruit is composed of cellulose (60%), hemicellulose (29%)
and lignin (11%). Luffa is an annual plant with a relatively long cycle; in a mediterranean
habitat, from four to five months elapse from germination to the maturation of the
fruits, with a first flowering in July and a second flowering in August.
[0008] The warmth requirements of Luffa are high: a lethal minimum of 0-2°C, minimum and
maximum temperatures for growth of 12-14 and 20-35°C, respectively, with an optimum
situated at around 25°C; the water content is 8.12% at 105°C. Luffa is widespread
in tropical and subtropical regions where it is generally the subject of domestic
horticultural cultivation. The Luffa fruit, dried after removal of the epicarp and
the seeds, is commonly sold as a body sponge in shops specializing in natural body-care
products, department stores, perfumeries, etc. One of the most interesting mechanical
characteristics of Luffa fibres is in fact their so-called "shape memory" owing to
which the fruit can be compressed up to 10-20 times and then returns to its original
shape and size if immersed in water or subjected to the effect of steam. The Luffa
fruit is also used industrially, practically unchanged, for producing thermally-insulating
and sound-absorbent panels, packaging and padding materials, and arch-supports for
footwear.
[0009] Like all fibres of vegetable origin used in papermaking, Luffa has to be subjected
to processing with the object of liberating the fibres from the useless and harmful
components, that is, to the processing which, in the papermaking field, takes the
name of digestion when chemical agents are used or, on the other hand, grinding when
the processing is mechanical. A digestion process is described below, by way of a
non-limiting example.
[0010] The epicarp and the seeds were removed from the fruit which was then dried, after
which it was subjected to a soda digestion process normally used for annual plants,
with the use of a discontinuous boiler with a capacity of 10 litres, with manual stirring,
under the following conditions:
| a) Reagents |
| NaOH |
18% |
| Concentration of fibre in the boiler |
8.5% |
| N.B. all of the values relate to the dry fibre. |
| b) Operative conditions |
|
| Preheating |
(20-110°C) 20 min |
| Impregnation |
20 min |
| Heating |
(100-170°C) 30 min |
| Digestion |
300 min |
| Operating pressure |
6 kg/cm2 |
[0011] Upon completion of the digestion, the liquor was separated for the analysis and the
cellulose pulp was washed with running water to eliminate as much of the exhausted
liquor as possible. With regard to the purification of the fibre from undigested matter
or the like, this was not carried out since the presence of undigested matter or knots
was negligible. The fibre yield was 57.82% which itself is an astounding parameter
placing Luffa at the same level as a conifer (the fibre yield of a conifer is normally
50-60%, whereas that of an annual plant is 15-20%).
[0012] A simplified beating curve was then performed on the crude cellulose pulp in order
to assess the behaviour of the fibre and the curves of the physical-mechanical characteristics
upon beating. Moreover, a typical bleaching process was carried out on a portion of
beaten pulp in two successive stages which, with regard to the reagents used, are
represented below:

[0013] Chemical, physical and mechanical determinations were carried out on the crude, beaten
and bleached cellulose pulp by means of the apparatus listed below:
| Apparatus used |
Analytical parameter |
| FRANK dynamometer |
breaking index |
| KORPUT burst meter |
bursting index |
| ELMENDORF tear tester |
tear factor |
| ELREPHO white |
brightness |
| RIETH hollander |
beating curve |
| TONIOLO sheet form |
analysis slips |
[0014] The methods used were the ATICELCA methods and, where these were lacking, the SCAN
methods were used.
[0015] The results obtained are given in Table 1 and are compared with those relating to
a common annual plant (in this particular case, sorgum):
TABLE 1
| |
Crude Luffa |
Bleached Luffa |
Crude Annual |
Bleached Annual |
| Degree of beating (°S.R.) |
18 untr.* |
37 |
37 |
34 untr. |
45 |
34 untr |
45 |
| Tensile index (kNm/kg) |
44.1 |
56.0 |
64.3 |
54.65 |
68.2 |
48.8 |
65.5 |
| Bursting index (MN/KG) |
4.84 |
5.05 |
5.06 |
3.38 |
3.77 |
2.60 |
3.86 |
| Tear factor (Nm2/kg) |
12.12 |
10.7 |
10.2 |
5.2 |
4.2 |
- |
3.60 |
| Porosity (m"/100cc) |
3 |
16 |
15 |
80 |
540 |
62 |
780 |
| Ash % |
2.4 |
- |
- |
4-6 |
- |
- |
- |
| Brightness G.E. |
48 |
40.5 |
71.5 |
45.5 |
- |
73 |
- |
| *untr. = untreated cellulose pulp, not beaten. |
[0016] As can be seen from the data relating to the degree of beating, the freeness of the
pulp produced from Luffa is unexpectedly better than that of the best annual plants
and similar to that of a broad-leaved tree. Similarly, the bursting index and the
tear factor are clearly better than those of the most common annual plants, whereas
the silica content is a great deal lower, as can be seen from the different percentages
of ash; only with regard to the tensile index can Luffa be considered equivalent to
a good annual plant.
[0017] The data given above are also confirmed by the images of Figures 1, 2, 3 and 4 which
represent, respectively, the fibres (enlarged one hundred times) of crude Luffa cylindrica,
of beaten Luffa cylindrica, of a coniferous-broad-leaved mixture (fir-beech), and
of an annual plant (sorgum), from which the similarity between the fibres of Luffa
cylindrica and those of the coniferous-broad-leaved mixture is clear.
[0018] The results relating to the use of Luffa are also particularly advantageous with
regard to the ecological balance of the process, as can be seen from the data given
below:
| Ecological Balance |
| 1) Exhausted liquor |
| C.O.D.: |
20400 ppm |
| C.O.D. (kg per ton of pulp): |
10.5 |
| Ratio C.O.D./organic matter: |
435 |
| 2) Bleach |
|
| C.O.D. (kg per ton of bleached pulp - 2-stages): |
60.2 |
[0019] In fact, the C.O.D. was in practice less than 50% of that normally necessary as far
as annual plants are concerned, with a consequent reduction in disposal costs and,
in particular, in possible ecological damage.
[0020] On the basis of these considerations, Luffa cylindrica is clearly particularly suitable
as a starting material for methods for the production of cellulose pulp for use in
papermaking; these methods need not be limited solely to digestion processes with
soda but may also include all methods in which a vegetable starting material is reduced
to fibres or fibre fragments.
1. Method for the production of cellulose pulp for use in papermaking, of the type in
which a vegetable material is processed so as to be reduced to fibres or fibre fragments,
characterized in that the vegetable material is Luffa cylindrica.
2. Method according to Claim 1, in which the processing is a digestion process, that
is, processing with solutions of chemical and semi-chemical reagents suitable for
dissolving most of the lignin contained in the vegetable starting material.
3. Method according to Claim 1, in which the processing is carried out by purely mechanical
means such as to reduce the vegetable starting material to a mass of individual fibres
and fibre fragments.
4. Method according to Claim 2, in which the process is digestion with soda.
5. Method according to Claim 2, in which the process is digestion with sulphate.
6. Method according to Claim 2, in which the process is digestion with sulphite.
7. Method according to Claim 2, in which the process is digestion with bisulphite.
8. Method according to Claim 2, in which the process is chloro-soda digestion.
9. Cellulose pulp for use in papermaking, characterized in that it is produced from Luffa
cylindrica.