AU2018101563A4 - Controller for compressor - Google Patents

Controller for compressor Download PDF

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Publication number
AU2018101563A4
AU2018101563A4 AU2018101563A AU2018101563A AU2018101563A4 AU 2018101563 A4 AU2018101563 A4 AU 2018101563A4 AU 2018101563 A AU2018101563 A AU 2018101563A AU 2018101563 A AU2018101563 A AU 2018101563A AU 2018101563 A4 AU2018101563 A4 AU 2018101563A4
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AU
Australia
Prior art keywords
controller
compressor
motor
vsd
driving
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AU2018101563A
Inventor
Pieter Michel Mena COOLS
Yogesh Avinash KRISHNASING
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Atlas Copco Airpower NV
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Atlas Copco Airpower NV
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Publication date
Priority to KR2020187000089U priority Critical patent/KR200493290Y1/en
Priority claimed from PCT/IB2017/052086 external-priority patent/WO2017178970A1/en
Application filed by Atlas Copco Airpower NV filed Critical Atlas Copco Airpower NV
Priority to AU2018101563A priority patent/AU2018101563A4/en
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Abstract

Controller for compressor. The present invention is directed to a controller for a 5 compressor, more specifically for a first electrical VSD motor configured to drive a compressor element, said controller comprising a housing in which is provided a rectifier, a DC link with a DC bus and two inverters connected to the same DC bus, a first inverter configured 10 to control the first VSD motor driving said compressor element, and a second inverter configured to control a second VSD motor driving a fan configured to cool the compressor. 15 Figure 1. --- ------ -1 21: 24 -- - ---- ---------- - --- - -- -- -- - -- ---- --- ---- M 9 Figure 1

Description

Controller for compressor.
This invention relates to a controller for a compressor, more specifically for an electrical VSD motor configured to drive a compressor element.
Controllers are typically used within a compressor for controlling the functioning capabilities of an electrical 10 VSD motor.
Typically such a compressor would have a main controller receiving input from a user concerning the requirement of the compressed gas at its outlet and another controller typically in communication with the main controller and 15 adjusting the functionality of the motor in order to achieve such required properties of compressed gas.
If the compressor further comprises other components such as a cooler or a dryer or the like, the existing units would typically include for each of such components a 20 separate controller preferably communicating with the main controller .
Consequently, the compressors can become very complex systems, having a plurality of controllers with all required communication paths, cables and connectors, 25 potentially needed pipes and fittings.
2018101563 19 Oct 2018
The complexity becoming even worse in the case of compressors having more than one compressor element connected either in series or in parallel, each compressor element potentially having its own motor.
Another drawback of existing compressors is the complex service operation, since when one of the controllers would sense a malfunction, the whole system would be brought to a force stop and the engineer performing the servicing would have to check all such controllers and their cable connections until finding the faulty component. This would mean that such compressor would not be functional for a very long time, causing additional costs for a user of such system not only for the servicing procedure but also because the compressor is not functional during this time, which can bring the user's system to a halt.
Taking the above mentioned drawbacks into account, the present invention seeks to provide a much simpler controller capable of controlling multiple motors at the same time.
20 The present invention also seeks to provide a controller
that would require a much easier and faster servicing
operation .
The present invention also seeks to provide a much more
compact solution, requiring less external communication 25 paths such as cables and connectors, reducing the possibility of encountering measurement errors and decreasing the manufacturing costs.
2018101563 19 Oct 2018
The present invention also seeks to increase the energy efficiency of such compressor, while at the same time maintaining the cooling efficiency.
The present invention solves at least one of the above and/or other problems by providing a compressor comprising a controller connected to a first VSD motor for driving a compressor element of said compressor, whereby the controller is further connected to a second VSD motor for driving a cooling fan configured to cool said compressor, said controller comprising a housing in which is provided a rectifier, a DC link with a DC bus and two inverters connected to the same DC bus, a first inverter configured to control the first VSD motor driving said compressor element, and a second inverter configured to control the second VSD motor driving the fan.
Because the controller comprises a housing whereby the two inverters are provided, such a controller will cover the capabilities of at least two controllers when compared to the controllers of an existing compressor.
Such a controller being much easier to manufacture, being a much more compact solution and be much easier to incorporate within the compressor. It will also require less communication paths such as cables and connectors.
Because the controller comprises the needed components within the same housing, the possibility of encountering communication errors between such components it's minimized if not eliminated.
2018101563 19 Oct 2018
Furthermore, the servicing procedure is much easier to perform, reducing the number of hours in which the compressor is not functioning.
Because the controller is provided with a housing for all its elements, such controller will be protected from potentially damaging effects of the outside environment, from potentially high humidity and particulate matter, and also from high temperature changes.
By adopting such a layout for the controller according to the present invention, the motor driving the fan will be in fact driven by varying its speed and not in an on/off manner as for the existing compressors. By doing this, the energy efficiency of the compressor is maintained high, and the lifetime of the motor is increased.
The present invention is further directed to a vacuum pump comprising a controller according to the present invention, the controller being connected to a first VSD motor for driving a vacuum element of said vacuum pump whereby the controller is further connected to a second 20 VSD motor for driving a cooling fan configured to cool said vacuum pump, said controller comprising a housing in which is provided a rectifier, a DC link with a DC bus and two inverters connected to the same DC bus, a first inverter configured to control the first VSD motor driving 25 said vacuum element, and a second inverter configured to control the second VSD motor driving the fan.
2018101563 19 Oct 2018
In the context of the present invention it should be understood that the benefits presented with respect to the controller also apply for the compressor and for the vacuum pump .
With the intention of better showing the characteristics of the invention, some preferred configurations according to the present invention are described hereinafter by way of an example, without any limiting nature, with reference to the accompanying drawings, wherein:
figure 1 schematically represents a compressor according to an embodiment of the present invention;
figure 2 schematically represents a controller according to an embodiment of the present invention; and figure 3 schematically represents a vacuum pump according to an embodiment of the present invention.
Figure 1 illustrates a compressor 1 comprising a compressor element 2 having a gas inlet 3 through which ambient air or a gas from an external source (not shown) is drawn in, and a compressed gas outlet 4 through which compressed gas is provided to a user's network 5.
The compressor element 2 being driven by a first variable speed (VSD) motor 6.
The compressor further comprising a controller 7 capable of controlling the variable speed motor 6.
2018101563 19 Oct 2018
Preferably, such a compressor further comprises an aftercooler 8 comprising a fan 9, said fan 9 being driven by a second VSD motor 10. The controller 7 being able to control said second VSD motor 10.
In the context of the present invention, the compressor 1 should be understood as the complete compressor installation, including the compressor element 2, all the typical connection pipes and valves, the aftercooler 8, the housing of the compressor 1 and possibly the first VSD 10 motor 6 and the second VSD motor 10.
In the context of the present invention, the compressor element 2 should be understood as the compressor element casing in which the compression process takes place by means of a rotor or through a reciprocating movement.
In the context of the present invention, said compressor element 2 can be selected from a group comprising: a screw, a tooth, a claw, a scroll, a rotary vane, a centrifugal, a piston, etc.
By controlling a variable speed motor it should be understood that the controller 7 generates a signal which is sent through a wired or wireless connection to possibly a local controller of such variable speed motor, said signal being capable of changing the rotational speed of the variable speed motor by increasing or decreasing it.
Another possibility is for said signal generated by the controller 7 to directly change the rotational speed of
2018101563 19 Oct 2018 the variable connection .
speed motor through
If the connection is wired, a wired or wireless such connection typically comprises a wire with two connectors
If the connection is wireless, at each end.
each of the controller and the variable speed motor, preferably comprises a wireless transceiver capable of sending and receiving a wireless signal.
In one embodiment according to the present invention, the controller 7 receives data concerning the requirements of the compressed gas through a graphical user interface (not shown) part of said controller 7, or through a main controller (not shown) part of said compressor 1 and in communication with said controller 7.
Turning now to figure 2, the controller 7 comprises a rectifier 11 connected to a main power line 12 from the user's premises, receiving alternative current (AC) from said power line and transforming the alternative current into direct current (DC).
A DC link with a DC bus allows for the two inverters to be connected to the two variable speed motors: a first inverter 13 connected to the first variable speed motor 6 and a second inverter 14 connected to the second variable speed motor 10. Said DC bus being a common bus for the two inverters.
2018101563 19 Oct 2018
The first and second inverter, 13 and 14, would preferably change the DC current into AC current and will also control the frequency and voltage of the signal reaching the first variable speed motor 6 and the second variable speed motor 10. By controlling the frequency and voltage, the speed of the two variable speed motors is controlled such that the demand at the user's network is met.
In a preferred embodiment according to the present invention, each of said first and second inverters, 13 and 14, comprises at least one IGBT (Insulated-Gate Bipolar Transistor) which is connected to said DC bus.
For a more smooth control, the controller 7 further comprises a DC link capacitor 15, connected between the rectifier 11 and the first and second inverters, 13 and 14, said capacitor 15 smoothening the electrical wave form such that the first and second inverters, 13 and 14, will receive a clean smooth signal.
In another embodiment according to the present invention, the controller 7 can further comprise a separate cooling fan 26 for cooling the power electronics of said controller 7.
By including such a separate cooling fan 26, the controller 7 will be protected from overheating and the compressor 1 will not experience a force shut down because of an increased temperature at the level of said controller 7.
2018101563 19 Oct 2018
In a further embodiment according to the present invention, the controller 7 further comprises a first current sensor 17 for sensing the current going through a winding of the first VSD motor 6 driving the compressor element 2.
Said first current sensor 17 being any type of current sensor such as for example and not limiting thereto: a current clamp meter, a Hall effect Integrated Circuit, a resistor, a fiber optic current sensor, a Rogowski coil.
Preferably, the first current sensor 17 is selected as a clamp meter, said clamp meter being clamped onto at least two phases of the first variable speed motor 6 and of the second variable speed motor 10 respectively. It is further possible to have a clamp meter clamped around three phases of said first variable speed motor 6 and of said second variable speed motor 10 respectively.
Such first current sensor 17 measuring the current going through the windings of the first variable speed motor 6 and second variable speed motor 10 respectively, and send such values to a processing unit 19 part of the controller 7 .
Said processing unit 19 preferably comparing the received measurement with a predetermined current limit and in case the measured current is equal to or higher than the predetermined current limit, the controller unit will stop the compressor 1, protecting the first variable speed
2018101563 19 Oct 2018 motor 6 and the second variable speed motor 10 from an overcurrent.
It is further possible to compare the measured current with a first predetermined current limit and if said 5 measured current is equal to or higher than said first predetermined current limit, but lower than a second predetermined current limit, the controller 7 generates an alert signal on the graphical user interface. However, if the measured current is equal to or higher than the second 10 predetermined current limit, the controller 7 stops the compressor 1.
Further, the measured current is also compared with a minimum predetermined current limit and if the measured current is equal to or lower than such a minimum 15 predetermined current limit, then the controller 7 stops the compressor 1.
It should be further not excluded, that the controller 7 can compare the measured current with more predetermined limits and generate different messages on the graphical 20 user interface, or less predetermined limits and possibly take immediate action and stop the compressor 1.
In the context of the present invention, it should be understood that the predetermined current limit, the first current limit, the second current limit and the minimum 25 predetermined current limit can have the same values for the measurements on the first VSD motor 6 as well as for the second VSD motor 10, or these values can be different.
2018101563 19 Oct 2018
Preferably, such values are selected according to the nominal functioning parameters for each of the first VSD motor 6 and of the second VSD motor 10.
In yet another embodiment according to the present invention, the controller 7 further comprises a second current sensor 18 for sensing the current going through a winding of the second VSD motor 10 driving the fan 9.
Said second current sensor 18 preferably being a module determining the current going through the second VSD motor 10 10 by applying a voltage over frequency method.
Accordingly, the voltage is measured, the frequency of the second VSD motor 10 is also retrieved and the current is further determined.
It should be however not excluded that the second current 15 sensor 18 can be of the same type as the first current sensor 17.
Tests have shown that by including a first current sensor and a second current sensor 18, the controller 7 according to the present invention comprises an electrical 20 protection to overcurrent, which is much more reliable and accurate compared to existing controllers typically having a mechanical protection for the current.
In another embodiment according to the present invention, the controller further comprises a voltage sensor 20 for 25 sensing the value of the voltage at the level of the first variable speed motor 6 driving the compressor element 2
2018101563 19 Oct 2018 and/or of the second variable speed
Preferably but not limiting thereto, is positioned on the DC bus, between the
VSD
The motor 10 driving the the voltage sensor 20 the rectifier 11 and capacitor 15, measuring the voltage of both the first motor 6 and processing comparing the voltage limit higher than controller 7
Further, the voltage with of the second VSD motor 10.
unit 19 of said controller 7 preferably measured voltage and if the measured said predetermined with a predetermined voltage is equal to or voltage limit, the will stop the compressor a predetermined minimum the measured predetermined voltage is equal to compare voltage the measured limit and if or lower than the minimum voltage, the controller 7 will the compressor 1.
It should be can compare limits and, alerts on compressor
In another stop further not excluded that the processing the measured voltage with more depending on the the graphical user embodiment according unit predetermined limits, it interface to the controller 7 further comprises (not shown) adapted to establish a an external device (not shown).
can generate or stop the the present invention, a communication module communication link with
2018101563 19 Oct 2018
A communication link should be understood as a connection between two terminals, allowing for a signal to pass therethrough.
Such a connection wireless medium.
An external device device capable of being realized through a wired or should be understood as any type of receiving and transmitting a through such a communication group comprising: a personal a tablet, a personal digital other device.
The controller 7 can be initialization data through
Accordingly, a user present invention can and send data such thereto: the current limit, predetermined voltage, minimum thereof .
It can of a signal link, such as selected from a computer, assistant, a laptop, a the cloud, phone, or any further adapted to receive such a communication link.
compressor 1 according to the connect as for predetermined to the controller 7 remotely example and not limiting current limit, the first the second current limit current limit, a maximum a predetermined voltage limit, and and the minimum a minimum a predetermined voltage limit and possibly additional further receive information concerning a and minimum speed of the first VSD motor 6 and second VSD motor 10.
limits maximum of the
2018101563 19 Oct 2018
In another embodiment according to the present invention, the compressor 1 further comprises a dryer 21, said dryer typically comprising a third motor (not shown) and a forth motor for driving a fan.
The third motor and the forth motor are preferably each connected to the controller through a Solid State Relay, 22 and 23.
Each SSR being connected to each of the third motor and the forth motor through a three phase connection. Said 10 third and fourth motor being controlled by the controller in an ON/OFF manner.
When compared to known controllers, this offers the advantage that the controller 7 according to the present invention makes the compressor 1 more durable and that the 15 servicing interventions can be performed at longer time intervals .
In another embodiment according to the present invention, the controller 7 further comprises a communication link to a temperature sensor 24, said temperature sensor 24 being 20 at the level of or in the vicinity of the first VSD motor
6. Said temperature sensor sending a measured temperature to the processing unit, whereby it is compared with a minimum threshold and a maximum threshold.
If the measured temperature is equal to or lower than said 25 minimum threshold, the controller 7 can stop the compressor 1, or said controller can disconnect the user's
2018101563 19 Oct 2018 network 5 and maintain the first VSD motor 6 functioning until the measured temperature is at least equal to said minimum threshold, moment when the controller 7 reconnects the user's network 5.
If said measured temperature is equal to or higher than the maximum threshold, the controller unit can stop the compressor 1.
Such measures protect the first VSD motor 6 from running at a high load while being at very low temperature, and it 10 also protects it from overheating.
It should be further understood that additional temperature thresholds could be also used, said additional temperature thresholds being selected between the minimum threshold and the maximum threshold. When such thresholds are being reached, the controller 7 can increase or decrease the speed of the first VSD motor 6 such as to control the temperature.
In a further embodiment according to the present invention, the controller 7 further comprises an internal power supply 25. The internal power supply 25 receiving power from the DC bus and providing power to the first VSD motor 6, the second VSD motor 10, it can further supply the necessary power to the main controller, and possibly to other components part of the compressor 1 such as valves, etc.
2018101563 19 Oct 2018
If the controller 7 comprises multiple printed circuit boards (PCB) , as it is shown in the example of figure 2, the power supply 25 can provide the necessary power for each of said PCBs, through internal supplies 25a and 25b.
It should not be excluded that other temperature sensors can also be provided, such as for example and not limiting thereto: a temperature sensor for each of the IGBTs, a temperature sensor for the internal power supply 25, a temperature sensor for the PCB board of the controller 7, 10 even an ambient temperature sensor, etc.
If the temperature of the IGBTs is measured, once such temperature reaches a predetermined threshold, the controller 7 can increase or decrease the speed of the first VSD motor 6 and/or of the second VSD motor 10. It 15 could alternately or cumulatively increase or decrease the frequency or the torque of the first VSD motor 6 and/or of the second VSD motor 10 or it can also stop the first VSD motor 6 and/or the second VSD motor 10.
If an ambient temperature sensor is provided, if the 20 measured ambient temperature would reach a predetermined ambient threshold, the controller 7 can decrease the speed of the first VSD motor 6 in order to protect it from overheating or can increase such sped in order to maintain a minimum temperature within the compressor 1.
Further, the controller 7 can also comprise an ambient humidity sensor. The measured ambient humidity can be used for avoiding condensate formation within one or more of
2018101563 19 Oct 2018 the following: the first VSD motor 6, the second VSD motor 10, and within the controller 7. Accordingly, if the measured ambient humidity is above a humidity limit, the controller can maintain the first VSD motor 6 and/or the 5 second VSD motor 10 running such that their temperature is maintained relatively high and condensate cannot form.
For maintaining the temperature of the controller 7 at safe levels the controller 7 further comprises a heat sink (not shown) a first fan 16 for creating an internal flow 10 of air within the housing and a second fan 27 positioned on the exterior of said housing for cooling the heatsink.
In a preferred embodiment according to the present invention and not limiting thereto, the rectifier 11, the DC link with the DC bus and the two inverters are on one 15 Printed Circuit Board.
By adopting such a layout, the controller 7 according to the present invention is even more compact, easier to manufacture and easier to change in case it is damaged.
The controller 7 according to the present invention not 20 only realizes an efficient protection of the compressor 1 but it also increases the lifetime of the components part of the compressor 1.
For further protection the controller 7 further comprises an AC choke and an EMC (Electromagnetic Compatibility) 25 filter 26 connected between the inlet connector through
2018101563 19 Oct 2018 which the controller 7 is connected to the main power line 12 of the user and the rectifier 11.
The present invention is further directed to a compressor comprising a controller 7 according to the present invention, the controller 7 being connected to a first VSD motor 6 for driving a compressor element 2 and further connected to a second VSD motor 10 for driving a cooling fan 9 configured to cool said compressor.
In a preferred embodiment according to the present invention, said compressor 1 does not have a relay cabinet.
Because of this the compressor 1 according to the present invention is much less complex.
It should however not be excluded that the controller 107 according to the present invention can be also provided within a vacuum pump 101, as illustrated in figure 3.
If such a controller 107 is provided in a vacuum pump 101, the system would be similar as for a compressor 1, the only difference would be that the gas inlet 103 receives gas from a user's network 105, and the vacuum outlet 104 is connected to the environment or to an external network
111.
Similarly to the compressor 1 of figure 1, the vacuum pump 101 comprises a vacuum element 102 being driven by a first 25 variable speed motor 106. The vacuum pump 101 further comprising a temperature sensor 124.
2018101563 19 Oct 2018
Further similarly, the vacuum pump 101 further comprises a dryer 121 and an aftercooler 108 comprising a fan 109 driven by a second variable speed motor 110.
The present invention is by no means limited to the 5 embodiments described as an example and shown in the drawings, but such a controller 7 can be realized in all kinds of variants, without departing from the scope of the invention .
Throughout this specification and the claims which follow, 10 unless the context requires otherwise, the word comprise, and variations such as comprises or comprising, will be understood to imply the inclusion of a stated integer or step or group of integers or steps but not the exclusion of any other integer or step or group of 15 integers or steps.
The reference in this specification to any prior publication (or information derived from it) , or to any matter which is known, is not, and should not be taken as, an acknowledgement or admission or any form of suggestion 20 that that prior publication (or information derived from it) or known matter forms part of the common general knowledge in the field of endeavour to which this specification relates.

Claims (4)

  1. The claims defining the invention are as follows:
    3.
    Compressor first VSD comprising a controller connected to motor for driving a compressor element said compressor, wherein connected to a second fan configured to controller comprising a rectifier, a DC inverters connected of
    VSD inverter driving inverter configured the controller is motor for cool said a housing in link with a to the same further driving a cooling compressor which is
    DC bus
    DC bus , said provided and two first to control the first
    VSD motor said compressor element, configured to control the and second second
    VSD motor driving the
    Compressor controller fan .
    according to claim
    1, wherein the further comprises a first current sensor for sensing the current going the first VSD motor.
    Compressor according to either through claim 1 or the controller further comprises a voltage sensing the value of the first VSD motor and/or of
    Compressor according to wherein the voltage at the any controller communication module second one of winding of
  2. 2, wherein sensor for the level
    VSD motor.
    claims 1 of to the
  3. 3, further comprises adapted to establish communication link with an external device.
    2018101563 19 Oct 2018
  4. 5. Vacuum pump comprising a controller connected to a first VSD motor for driving a vacuum element of said vacuum pump, wherein the controller is further connected to a second VSD motor for driving a cooling fan configured to cool said vacuum pump, said controller comprising a housing in which is provided a rectifier, a DC link with a DC bus and two inverters connected to the same DC bus, a first inverter configured to control the first VSD motor driving said vacuum element, and a second inverter configured to control the second VSD motor driving the fan.
AU2018101563A 2016-04-12 2018-10-19 Controller for compressor Active AU2018101563A4 (en)

Priority Applications (2)

Application Number Priority Date Filing Date Title
KR2020187000089U KR200493290Y1 (en) 2016-04-12 2017-04-11 Compressor or vacuum pump
AU2018101563A AU2018101563A4 (en) 2016-04-12 2018-10-19 Controller for compressor

Applications Claiming Priority (4)

Application Number Priority Date Filing Date Title
US62/321,418 2016-04-12
BE2017/5254 2017-04-11
PCT/IB2017/052086 WO2017178970A1 (en) 2016-04-12 2017-04-11 Controller for compressor
AU2018101563A AU2018101563A4 (en) 2016-04-12 2018-10-19 Controller for compressor

Related Parent Applications (1)

Application Number Title Priority Date Filing Date
PCT/IB2017/052086 Division WO2017178970A1 (en) 2016-04-12 2017-04-11 Controller for compressor

Publications (1)

Publication Number Publication Date
AU2018101563A4 true AU2018101563A4 (en) 2018-11-29

Family

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Family Applications (1)

Application Number Title Priority Date Filing Date
AU2018101563A Active AU2018101563A4 (en) 2016-04-12 2018-10-19 Controller for compressor

Country Status (1)

Country Link
AU (1) AU2018101563A4 (en)

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