1. Field of the Invention
The present invention relates to a loom, for example a Jacquard loom, provided with a cooling system of the threads and of the corresponding guide means.
2. State of the Prior Art
Owing to the increasingly urgent need to improve the productivity of looms, it has recently become necessary to increasing the weaving speed of machines and therefore the speed of the harnesses or assembly threads inside the boards and the bottom of the Jacquard loom. This gives rise to numerous problems in Jacquard looms. In fact, the high-speed rubbing between threads and guide elements causes considerable and undesirable overheating that is due to friction. This phenomenon is typically negative in Jacquard looms, because it accelerates the process of wear of the guide boards and damages the harnesses as they move.
Cooling systems were proposed in the past to solve the above problems.
One of the prior-art solutions proposes simply using a cooling fan with an air flow directed to the guides zones of the harnesses in the loom. However, this system enables only a small quantity of heat to be removed in relation to energy consumption and the amount of flow of cooling air generated. In fact, this cooling flow is directed to the overheated zones in an approximate and non-selective manner, with significant waste of cooling air and considerable inefficiency in the overall cooling system.
A second prior-art solution suggests using a system of compressed air. Nevertheless, the latter are typically just as expensive as the fan systems. Furthermore, the use of compressors may lead to lubricant circulating in the cooling system, with a consequent risk of having undesirable traces of grease inside the assembly (or top). Again, the pressure rises that come into play in these systems could lead to local condensate on the guide boards, thus altering normal and good operation of the loom.
The general object of the present invention is to overcome the aforementioned drawbacks by providing a loom with an assembly provided with a cooling system that is able to remove a sufficiently high quantity of heat, whilst involving relatively low installation costs and limited energy consumption.
A further object of the present invention is to provide a loom with assembly provided with a cooling system that is easily adjustable and adaptable to the specific cooling requirements of different weaving conditions.
Another object of the present invention is to provide a cooling system that enables the guide boards of the threads, the threads themselves and also the bottoms of the loom or glass screens to be kept suitably clean.
In view of this object a Jacquard loom has been devised according to the invention provided with thread guide means and with a cooling system of the guide means and of the threads near the guides means, said cooling system comprising:
To make clearer the explanation of the innovative principles of the present invention and its advantages in relation to the prior art a possible embodiment applying such principles will be illustrated below with the help of attached drawings by way of example. In the drawings:
With reference to the figures,
The ends of the distribution pipes 21 that are further from the supply conduit 20 are shut. Furthermore, on their side wall, the pipes 21 are provided with a sequence of delivery holes 22, through which the cooling air is blown. The delivery holes 22 are aligned parallel to the pipe axis 21 and point in the direction of the threads 14 so as to generate an air flow that is virtually parallel and touches a face of the guide boards 12, 13. The flow of cooling air that is thereby generated affects the portions of threads 14 that are nearest the boards and boards themselves 12, 13 (see
Advantageously, the distribution pipes 21 are formed of modular segments that can be assembled in series. In this way it is possible to obtain cooling flows of different amounts and such as to adapt as well as possible to the dimensions of the guide boards, thereby preventing waste of cooling air or ineffective cooling of the peripheral zones of the loom.
It should be noted that the step of positioning the distribution pipes along the longest side of the guide boards enables the cooling action of the system to be optimized. In fact, in this way the threads 14 are on average nearer the delivery holes 22, in a zone in which the air flow is more intense and therefore characterized by greater cooling capacity.
The cooling system that has just been disclosed enables great operating flexibility to be obtained. In fact, part of the delivery holes 22 can be closed during use of the loom in such a way as to create a greater cooling flow in those guide zones in which thermal stress is higher and less cooling flow where this stress is less. In this way, the air flow is always used to best effect, preventing part thereof flowing where it is not necessary. This enables a very efficient cooling system to be obtained so as to remove a satisfactorily high level of heat with relatively moderate energy consumption. Furthermore, the disclosed system is also economical in terms of installation costs compared for example with compressed-air systems, costly compression devices not being used. In addition to this a cooling system has been devised that also enables the thread guide zones and the threads themselves to be kept clean. In fact, the blowing air prevents the depositing of foreign bodies or dusts on the guide boards and on the threads. Furthermore, the absence of compressors in the system excludes the possibility of formation of patches of lubricant inside the loom.
Advantageously, the distribution pipe and the supply conduit will have a section that is suitable for minimizing load losses of the cooling air flow. It has been found to be favorable to use pipes with a section of more than 110 cm2, preferably comprised between 200 cm2 and 700 cm2. Furthermore, in order to create a “pressurized reservoir” effect and to ensure uniform discharge of air from all holes, it has been found to be appropriate to give the delivery holes sections between 0.75 cm2 and 7 cm2.
Naturally, the above disclosure of an embodiment applying the innovative principles of the present invention is given by way of exemplification of these innovative principles and must not therefore be taken as a limitation of the scope claimed herein. For example, the delivery holes of the cooling air need not be equidistant to one another and may have different diameters according their distance from the blowing fan. Furthermore, the distribution pipes could be provided with two open ends and therefore be bilaterally supplied with cooling air rather than unilaterally as disclosed above. Alternatively, the distribution pipes could be provided with two closed ends and be supplied by means of an inlet port arranged halfway along their longitudinal extent.
Number | Date | Country | Kind |
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MI2003U 000537 | Nov 2003 | IT | national |