The invention relates to a liquid-air cooling system that includes at least one fan device comprising at least one variable-speed fan motor that powers a fan impeller to generate cooling capacity for a fluid of a cooling cycle. To control the speed of the fan motor by an automatic control system, at least one actual default value that originates from a machine unit connected to the liquid-air cooling system, is compared to a desired default value. The cooling capacity of the liquid-air cooling system is then adjusted as a function of the current output temperature values of the respective machine unit.
EP 0 968 371 81 discloses and describes a fluid cooling device comprising a motor that powers a fan impeller and a fluid pump. The fluid pump takes fluid from an oil reservoir and conveys it into a hydraulic operating cycle. In the hydraulic operating cycle, the fluid (hydraulic medium) is heated and routed to a heat exchanger. From the heat exchanger, the cooled fluid is recirculated to the oil reservoir. The oil reservoir of the fluid cooling system is configured in the shape of a basin with particularly high-reaching basin edges that are suitable to form a housing part for receiving the fan impeller and an air-routing chute for a heat exchanger of the fluid cooling device. With the fluid cooling device, an oil reservoir can be provided in an especially compact assembly for storing and circulating large fluid volumes.
A control system and a method for controlling the speed of a plurality of fans for cooling a plurality of flow media of a machine unit are disclosed in DE 100 62 534 A1. The speed of each of the plurality of fans is controlled specifically according to an individual heat dissipation requirement of heat transfer cores. For one temperature sensor, respectively, of each of the plurality of flow media, current temperatures are monitored. Each sensor can be operated to generate a signal that displays the temperature of the respective flow medium, while transferring the signal to an electronic control device to control the respectively singular speed of each of the fans.
Using the previously described solution, temperature-control, especially cooling, tasks for a fluid of a hydraulic circuit can be basically implemented. However, particularly the temperature of the fluid that has passed through the fan device is, seen in absolute terms, dependent on the respective and varying ambient temperature of the hydraulic power pack. The output temperature of the fluid therefore fluctuates in the known hydraulic power packs and fluid cooling devices after it passes through the fan device.
An object of the present invention to provide an improved liquid-air cooling system having a fan device with a cooling capacity that takes into account the ambient temperature of the liquid-air cooling system and that is able to permanently implement an exact desired temperature of the fluid.
This object is basically achieved by a liquid-air cooling system that includes a fan device with a fan impeller powered by a variable-speed fan motor. The system basically allows for the implementation of cooling capacity for a fluid in a cooling cycle taking into account an actual default value—such as a temperature value—that originates from a machine unit that can be connected via the fluid cycle to a liquid-air cooling system. According to the invention, the liquid-air cooling system also includes the possibility of taking into account a desired default value, The desired default value is then compared to the actual default value such that the cooling capacity of the fan device is adjusted as a function of the actual output values of the machine unit that is supplied with fluid.
An automatic control system handles a corresponding desired/actual comparison and speed control of the fan motor. The actual default value and the desired default values therein can be represented by a temperature value. The actual default value and the desired default value can also be described by suitable other characteristic values that relate to a current operating point of the machine unit and a current actual temperature value that reflects the current operating conditions with regard to the liquid-air cooling system.
In an especially preferred embodiment of the liquid-air cooling system, and particularly using a memory and as a processor of the automatic control system that adjust the speed of the fan impeller, an air temperature is provided, for example as a desired default value, on the air supply side of the fan device. A desired default value is either a temperature of the ambient air of the hydraulic power pack or a temperature of the machine unit or of a component of the machine unit that receives a fluid flow-through for the purpose of temperature control.
Ambient air is provided as a cooling medium to increase the energy efficiency of the liquid-air cooling system. Advantageously, the speed of the fan motor is controlled in such a manner that the fluid temperature of the coolant is maintained at a value that is lowered, for example, by 5° Kelvin or more in comparison to a desired temperature that represents the desired default temperature. To be able to implement a cost-effective liquid-air cooling system, advantageously, a variable-speed motor is selected as the fan motor. For a fan motor control, a corresponding automatic control system is advantageously used in connection with a machine unit or, when bus systems are used, for the transmission of the desired default value as well as the actual default value, or, in the sense of a field bus system, for networking a plurality of machine units. A PID controller therein controls the speed of the fan motor. PID control systems are known to the person skilled in the art and are commonly used for controlling the operation of mechanical drives or other mechanical equipment accessories of machine units. The invention comprises using any type of PID control. The output quantity of the PID control is limited to the maximum allowable speed of the fan motor and/or the fan impeller.
In an especially preferred embodiment, the liquid-air cooling system is combined onto a compact unit with a minimized required assembly space comprising a fluid tank, a motor for powering a fluid pump, the fluid pump itself and the fan motor plus the fan impeller and any associated cooling apparatus as well as a cooler housing. Especially preferably, the motor for powering the fluid pump is mounted directly on the fluid tank.
For expediency, the geometric dimensions of the aforementioned components of the liquid-air cooling system are selected in such a manner that the fan device and the motor for powering the fluid pump essentially do not extend beyond a base area of the fluid tank.
The fluid can be, for example, transmission oil or hydraulic oil, or also a mixture of water and glycol.
With the liquid-air cooling system, very exact temperature-control tasks can be carried out on a machine tool, transmission, extruder, motor, frequency converter or on other types of machine units. Using a minimum of energy, a permanent, relative to temperature fluctuations or a temperature-controlled machine unit, exact operation of a corresponding machine unit can be achieved. Using the liquid-air cooling system, a bed of a machine unit or a singular machine component, such as a spindle of the machine unit, can be supplied with fluid, particularly a temperature-control fluid.
Other objects, advantages and salient features of the present invention will become apparent from the following detailed description, which, taken in conjunction with the annexed drawings, discloses a preferred embodiment of the present invention.
Referring to the drawings that form a part of this disclosure and that are not drawn to scale:
a is a graph of an example of the heat output from a machine unit that is supplied to the liquid-air cooling system;
b is a superimposed curve diagram showing the developments over time of the temperature of the fluid before entering in the machine unit, the temperature of the fluid downstream of the pump outlet, the fluid volume flow V, and the air ambient temperature of the hydraulic power pack;
c is a superimposed curve diagram showing the developments over time of the motor current of the fan motor, measured in Amperes, and the provided motor power of the fan motor, measured in kilowatts; and
d is a graph showing the development over time of the speed of the fan motor.
As shown in
A motor control unit 24 is mounted directly on the top side of the fan motor 3, or the outside area thereof provided with cooling ribs, respectively. Resulting is an integrated cable connection between the motor control unit 24 and the fan motor 3. This structural measure avoids electromagnetic interference fields during the operation of the fan motor 3 and increases the EMV tolerance of the hydraulic power pack 1. The motor control unit 24 includes, in particular, a frequency converter that is parameterized individually in the presently shown embodiment by a separate operating unit and can be connected by a cable plug-in connection that is adjustable for the respective application of the fan motor 3.
The fluid pump 14 conveys a temperature-control fluid in the presently shown embodiment, preferably a water-glycol mixture, and is embodied as an immersion pump. The fluid pump 14 therein can basically be designed, in terms of the construction type, more for a large volume flow or more for a correspondingly high pressure level of fluid 5 in a liquid-air cooling system circuit 6 for the machine unit 9. The construction type of the fluid pump 14 can be, for example, a rotary pump or a pump with displacement elements like, for example, a roller pump or a rotary vane-type pump or a gear-type pump. Pump parts of the fluid pump 14 extend from and into the fluid tank 13 for the removal of fluid, not shown in further detail. In particular, the fluid pump 14 has a pump opening 25 for removing the fluid 5 from the fluid tank 13. After the fluid 5 has run through the machine unit 9 or also a component 11 of the machine unit 9, it is routed into the cellular radiator 19 via connection K. Cooled fluid 5 leaves the heat exchanger 19 directly via the actual value sensor and pipes 26 in the fluid tank 13.
The temperature difference that is adjusted in the present embodiment is >5° Kelvin. A PID controller 27 in the motor control unit 24 serves particularly as a speed controller for the fan motor 3. The distributor rail 7, the motor control unit 24 as well as the PID controller 27 can also be combined into an automatic control system (not shown).
a to 4d show logs of relevant operational parameters during the operation of the liquid-air cooling system 1 and of the machine unit 9 that is cooled by the same. For example,
b shows relevant temperature developments on the liquid-air cooling system plotted over the same time interval. The top curve in
Below the top curve in
Below these mentioned temperature courses,
c depicts, in the top curve, the course that the motor current of the fan motor 3 takes, while the bottom curve represents the course of the motor output of the liquid-air system of the fan motor 3. In the depicted embodiment, the motor current fluctuates between approximately 1.2 and 2.2 Ampere, while the recorded motor output is between approximately 0 and 400 Watt.
d is a representation of the speed fluctuation of the fan impeller 4 that is necessary to be able to depict the exact output temperature of fluid 5, as shown in
While one embodiment has been chosen to illustrate the invention, it will be understood by those skilled in the art that various changes and modifications can be made therein without departing from the scope of the invention as defined in the appended claims.
Number | Date | Country | Kind |
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10 2010 056 567 | Dec 2010 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP2011/006396 | 12/17/2011 | WO | 00 | 7/24/2013 |
Publishing Document | Publishing Date | Country | Kind |
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WO2012/089316 | 7/5/2012 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
5040379 | Fukunaga et al. | Aug 1991 | A |
6337949 | Muron | Jan 2002 | B1 |
6352106 | Hartman | Mar 2002 | B1 |
7207297 | Hayami | Apr 2007 | B2 |
7270090 | Surnilla | Sep 2007 | B2 |
7424868 | Reckels | Sep 2008 | B2 |
7657347 | Campbell | Feb 2010 | B2 |
9181850 | Roby | Nov 2015 | B2 |
20010017110 | Ap | Aug 2001 | A1 |
20020050251 | Takahashi | May 2002 | A1 |
20020152972 | Iwasaki | Oct 2002 | A1 |
20030217707 | Iwasaki | Nov 2003 | A1 |
20040069546 | Lou | Apr 2004 | A1 |
20050207899 | Furuta | Sep 2005 | A1 |
20060062678 | Furuta | Mar 2006 | A1 |
20060096554 | Shiozaki | May 2006 | A1 |
20070163759 | Klein et al. | Jul 2007 | A1 |
20080188173 | Chen | Aug 2008 | A1 |
20090211542 | Guerrero | Aug 2009 | A1 |
20090255278 | Taras | Oct 2009 | A1 |
20100065355 | Reddy | Mar 2010 | A1 |
20130112392 | Karpinski | May 2013 | A1 |
20150308441 | Magaziner | Oct 2015 | A1 |
Number | Date | Country |
---|---|---|
100 62 534 | Jul 2001 | DE |
100 16 435 | Oct 2001 | DE |
101 58 917 | Jun 2003 | DE |
103 31 216 | Sep 2004 | DE |
0 968 371 | Jan 2000 | EP |
2003 054 250 | Feb 2003 | JP |
Number | Date | Country | |
---|---|---|---|
20130306300 A1 | Nov 2013 | US |