This application is the national stage entry under 35 USC 371 of PCT application PCT/EP2012/003266, filed Aug. 1, 2012 which claims the benefit of the Aug. 25, 2011 priority date of German application 10 2011 111 188.7, the contents of which are herein incorporated by reference.
The invention relates to a vacuum device for generating negative pressure in an installation for filling containers with liquid bulk product, to an installation for the processing of such containers, and to a method for controlling such a vacuum device.
In plants for the filling of containers with a liquid bulk product, e.g. in container filling installations, with certain filling methods, a vacuum or negative pressure is needed and used to remove ambient air, and, in connection with this, the oxygen contained in the ambient air, from the containers to be filled. This step is typically carried out in a one-stage or multi-stage pre-processing phase preceding the actual filling phase.
In known vacuum devices that are used in the drinks industry, it is known to form a vacuum device by a single vacuum pump. This vacuum pump is adapted, in terms of its vacuum power and its electrical power, to the vacuum or suction power needed for the particular installation in both normal operation and in maximum operation. Changes or fluctuations in the currently necessary vacuum or suction power can then be taken into account solely within certain limits by changing the speed of the vacuum pump.
This approach results in the manufacturers of such installations providing different vacuum pumps adapted to the vacuum power required in each case for different vacuum devices with differing vacuum power levels.
Among the disadvantages of this arrangement are an increased outlay for maintaining supplies and stocks of different vacuum pumps and their spare parts, associated increased costs, and an inability to change the vacuum and suction power of the relevant vacuum device by more than a limited extent.
A vacuum device according to the invention avoids the aforesaid drawbacks and allows, with a high level of operating reliability, an adaptation of the vacuum or suction power provided or to be provided by the vacuum device within a wide range, while maintaining the most optimum effectiveness possible.
According to one aspect of the invention, the vacuum device consists of at least two vacuum pumps made for parallel operation, preferably of more than two vacuum pumps made for parallel operation, wherein these vacuum pumps preferably are of the same design and have the same power. A substantial partial aspect of the invention consists of the complete vacuum or suction power of the vacuum device being controlled by the speed and the number of activated vacuum pumps.
Advantages of the invention include reduced energy and power consumption, reduction of stock-holding and stock-holding costs, in particular of spare parts, shorter delivery times for spare parts, part-redundancy, simplified maintenance, and the saving of water as a result of having common seal-water conditioning for all the vacuum pumps.
Moreover, the invention offers the possibility of retrofitting existing vacuum devices accordingly.
As used herein, the expressions “substantially” and “approximately” are intended to mean deviations from exact values in each case by +/−10%, and preferably by +/−5% and/or deviations that do not significantly affect function.
As used herein, the expression “pour rate” means the filling performance, measured for example in liters provided by the container-filling machine per unit of time.
As used herein, the term “containers” means, in particular, cans, bottles, tubes, or pouches, in each case made of metal, glass and/or plastic, as well as other packaging means that are suitable for filling with liquid or viscous products.
Further developments, benefits and application possibilities of the invention arise also from the following description of examples of embodiments and from the figures. In this regard, all characteristics described and/or illustrated individually or in any combination are categorically the subject of the invention, regardless of their inclusion in the claims or reference to them. The content of the claims is also an integral part of the description.
The invention is explained in more detail below by means of the figures using an example of an embodiment. The following are shown:
A central vacuum device 3 for the installation 1 generates the necessary negative pressure or the vacuum, a. The central vacuum device 3 features a multiplicity of electrically powered vacuum pumps 4.1-4.3. In the embodiment illustrated, the vacuum device 3 has a total of three vacuum pumps 4.1-4.3. The vacuum or suction power of each such pump 4.1-4.3 can be individually controlled or adjusted within certain limits by changing the pump speed. To do this, the electrical control of the drive motor of the particular vacuum pump 4.1-4.3 adjusts the drive frequency using a frequency controller. The frequency is adjusted within a frequency range that extends between 40 Hz and 60 Hz.
In
The process parameters can, for example, be retrieved from a memory in the control electronics and/or can be input by means of an input 6 in the control electronics.
In an installation for the filling of containers 2, wherein the containers are subject one or more times to a vacuum, for example before the actual filling, and then flushed with an inert gas, for example CO2 gas, the process parameters can be product-specific parameters, the container size, the filling temperature, etc.
With these process parameters, for a special processing method and for a temperature for the seal water circuit of the vacuum pumps 4.1-4.3, the number of pumps needed in each case is determined, for example, by a table and entered or input into the machine control system 5 at the start of production so that the production of the installation 1 can be started with this number of pumps (start condition).
In the tables below, the number of vacuum pumps 4.1-4.3 needed in each case for three processing methods carried out with installation 1, i.e. for three different filling methods and for different temperatures of the seal water of the vacuum pumps, depending on the suction power, is given in m3/h.
As mentioned above, the suction power of the vacuum pumps 4.1-4.3 is controlled or adjusted by their speed. In this regard, it is necessary to specify the speed of the vacuum pump 4.1-4.3 depending on the pump type used such that it can be operated economically reasonably, i.e. with the most optimum efficiency possible. For every pump type, taking account of the frequency of the operating voltage, or mains voltage, the power consumption, the mechanical efficiency, the hydraulic efficiency and the electrical efficiency, a pump characteristic curve can be established that reflects the electrical power rating, i.e. the electrical power requirement as a function of the vacuum or suction power. In the event that other parameters, such as the seal water temperature for example, have a not inconsiderable influence on the electrical power requirement of the particular vacuum pump 4.1-4.3, they are also taken into account in the pump characteristic curve. Alternatively, parameter-specific pump characteristic curves are established.
In the applicant's premises, in trials on a vacuum pump in different operating statuses, various specific power requirements were established. These values ranged from 27 m3/kW to 40 m3/kW. It is clear from these values that there is considerable optimization potential here.
Taking account of the pump characteristic curve, preferably also taking account of the overall efficiency of the vacuum device 3 and the area supplying the vacuum of installation 1, the overall characteristic curve 7 shown in
A substantial part of the overall characteristic curve 7 are the switching points, identified on the curve 7 by SP1 and SP2, at which the change in the number of vacuum pumps 4.1-4.3 to a higher or lower number of vacuum pumps occurs. For example, a transition between one vacuum pump and two vacuum pumps, operated in parallel, occurs at switching point SP1 and a transition between two vacuum pumps operated in parallel to three vacuum pumps operated in parallel takes place at switching point SP2. In one embodiment, the electrical power supplied to the vacuum device, which is monitored by the machine control system, serves as a criterion for the change by the machine control system 5.
As can be seen from the diagram in
Moreover, the operating point represents a possible operating point during the operation of a single vacuum pump 4.1-4.3, wherein the suction power and allocated power requirement are known also for this operating point of a single vacuum pump. As can be seen from
Similarly, with just two vacuum pumps operated in parallel, the suction power could be increased beyond the suction point SP2. Again, doing so would come at the cost of clearly worsening efficiency, with an accompanying clear rise in the electrical power requirement, as indicated in the diagram by the operating points 7.2.
As also shown in
The overall characteristic curve shown in
In addition, the seal water temperature during the operation of installation 1 is preferably continuously measured and transmitted to the machine control system. The machine control system 5 then uses the overall characteristic curve 7 allocated in each case in order to control or adjust the installation.
The overall characteristic curve 7, shown by way of example, also assumes that the vacuum pumps 4.1-4.3 working in parallel are operated in each case at the same frequency as the supply voltage. Although this represents a solution that is easy to implement, the operation of the vacuum pumps 4.1-4.3 working in parallel at the same frequency as the supply voltage is not essential. In the context of the present invention, it is also possible for the individual vacuum pumps 4.1-4.3 operated in parallel to run at different supply frequencies. This creates the possibility of increasing the efficiency of the entire installation, at least for some vacuum power levels.
To guarantee a correct supply to the installation 1 of the vacuum and thereby in particular to also guarantee a correct vacuum processing of the containers 2, it is essential for a specified target negative pressure, for example the negative pressure of 80 mbar-100 mbar, to be present in the corresponding vacuum pipes and/or connections. This negative pressure is identical to the negative pressure on the intake side of the activated vacuum pumps 4.1-4.3.
If, as a result of this adjustment of the pump speed for example, the next higher switching point SP1 or SP2 is reached, the machine control system 5 switches according to the overall characteristic curve 7 to the next higher number of vacuum pumps 4.1-4.3 operated in parallel. If, in the other direction, a reduction in the suction power of the vacuum unit 3 and thus a reduction in the pump speed is required, then, upon reaching the switching point SP1 or SP2, the machine control system 5 switches to the next lower number of activated vacuum pumps 4.1-4.3.
Also shown in
Taking account of the power consumption of the vacuum unit 3 and the overall characteristic curve 7, a function and fault monitoring of the entire installation is furthermore possible. The machine control system 5 knows how many vacuum pumps 4.1-4.3 need to be operated for a certain operating status of the installation at a specified frequency of the supply voltage or what target energy consumption arises in the particular operating status. If the corresponding value, i.e. the number of activated vacuum pumps 4.1-4.3, the frequency of the supply voltage for these pumps, and thus also the energy consumption for the maintenance of the target negative pressure differ from the target values by more than a particular amount, which is defined by a specified admissible tolerance range, then there is a fault in the vacuum device 3 or in the installation 1, for example in the form of a relatively large leak. In this case, a warning or indication signal or a warning or indication message is distributed by the machine control system 5 or by another monitoring unit. In the event of substantial differences from the target values, the machine control system causes, for example, a power-down and halt of the installation 1.
Only in a few operating statuses of the installation 1 is it necessary for all the vacuum pumps 4.1-4.3 of the vacuum device 3 to be activated simultaneously. Instead, during a large part of the operating time of the vacuum installation 3, only some of the available vacuum pumps 4.1-4.3 are in use. To keep the operating times, and thus the intervals for inspections, maintenance, repairs etc. for all the vacuum pumps 4.1-4.3 as identical as possible, the machine control system 5 is furthermore designed to capture the particular operating time or operating hours of each individual vacuum pump 4.1-4.3 and to save the corresponding data. In this way, different methods arise for keeping operating times for all the vacuum pumps 4.1-4.3 as identical as possible.
According to a first method, both at the start of the process and also during the running of the process, the vacuum pumps 4.1-4.3 which at that time have the lowest cumulative operating times are preferentially activated by the machine control system 5 so that an even use of all the vacuum pumps 4.1-4.3 occurs and the relevant maintenance is due at the same time for all the vacuum pumps.
According to another method, the vacuum pumps 4.1-4.3 to be activated are selected in each case such that the maintenance for some of the vacuum pumps 4.1-4.3 then arises where the installation 1 and/or its components require maintenance, so that, for example, the number of production interruptions and/or interventions for service personnel and thus also the associated costs incurred are also considerably reduced.
According to another operating method, a vacuum pump 4.1-4.3 is locked when, due to its operating hours and/or its condition, maintenance of that pump is absolutely essential. The operation of the vacuum device 3 then occurs solely with the remaining vacuum pumps 4.1-4.3, which have not been locked. The maintenance, which would also include any necessary repairs of the locked vacuum pump is then carried out during running operation.
Naturally, the aforesaid operating methods can also be combined for the operation of the vacuum pumps 4.1-4.3.
The invention has been described above using examples of embodiments. It is clear that modifications and variations are possible without thereby departing from the inventive idea underlying the invention. Thus, above it is assumed that the vacuum device 3 has a total of three vacuum pumps 4.1-4.3. The number of these pumps can differ from this, but in any event is greater than one.
Number | Date | Country | Kind |
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10 2011 111 188 | Aug 2011 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP2012/003266 | 8/1/2012 | WO | 00 | 6/10/2014 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2013/026522 | 2/28/2013 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
3282306 | Greenhut | Nov 1966 | A |
4589945 | Polit | May 1986 | A |
4713925 | Kafkis | Dec 1987 | A |
5176187 | Grant | Jan 1993 | A |
5636666 | Mattern | Jun 1997 | A |
6418982 | Zhang | Jul 2002 | B1 |
6470925 | Hyvarinen | Oct 2002 | B2 |
6488889 | Stahlecker | Dec 2002 | B1 |
7341078 | Xia | Mar 2008 | B1 |
8016003 | Bullen | Sep 2011 | B2 |
8919392 | Bullen | Dec 2014 | B2 |
20020159915 | Zelina | Oct 2002 | A1 |
20070186992 | Bullen | Aug 2007 | A1 |
Number | Date | Country |
---|---|---|
43 14 054 | Oct 1994 | DE |
199 16 478 | Oct 2000 | DE |
100 28 290 | Dec 2001 | DE |
1 595 794 | Nov 2005 | EP |
WO 02064174 | Aug 2002 | WO |
Number | Date | Country | |
---|---|---|---|
20140356189 A1 | Dec 2014 | US |