The invention relates to a device for providing an amount of power to a gas discharge lamp. The invention also relates to a system comprising a device, to a method, to a computer program product and to a medium.
Examples of such a device are electronic ballasts, and examples of such a system are power supplies, and/or lights comprising gas discharge lamps. The computer program product may be used in a computer, a microcontroller, and analog and/or digital control circuitry etc. As a result, the device can be any kind of control device.
US 2005/0088114 discloses a discharge lamp lighting device. A discharge bulb ballast has a control circuit that includes a turning point detecting unit for detecting a turning point at which a bulb voltage starts rising after switching on a discharge bulb. Immediately after switching on the discharge bulb, a power control unit carries out control in such a manner that the discharge bulb is supplied with first power. When the turning point detecting unit detects that the voltage of the discharge bulb exceeds the turning point, the power control unit supplies the discharge bulb with second power less than the first power.
It is an object of the invention to provide an improved device. It is a further object of the invention to provide a system comprising an improved device, and to provide an improved method, computer program product, and medium.
According to a first aspect of the invention, a device is provided for providing an amount of power to a gas discharge lamp, the device comprising a control circuit for controlling a supply circuit for supplying the power according to a power versus voltage graph, the power versus voltage graph defining a first state for supplying a first amount of power, the power versus voltage graph defining a second state for supplying a second amount of power, the first state ending at a boundary voltage value of a voltage signal and the second state starting at the boundary voltage value, the control circuit comprising a calculator for calculating the boundary voltage value as a function of a measured voltage value of the voltage signal that has been measured after a predefined time-interval from a cold start of the gas discharge lamp.
A device provides for example a current signal to a gas discharge lamp. As a result, a voltage signal across the gas discharge lamp will be present. The combination of these current and voltage signals defines an amount of power provided to the gas discharge lamp. The device comprises a control circuit for controlling a supply circuit for supplying the power according to a power versus voltage graph. This power versus voltage graph defines a first state for supplying a first amount of power. This power versus voltage graph defines a second state for supplying a second amount of power. A border between these first and second states is situated at a boundary voltage value of the voltage signal present across the gas discharge lamp, also known as turning point voltage value. The control circuit comprises a calculator for calculating the boundary voltage value as a function of a measured voltage value of the voltage signal that has been measured after a predefined time-interval has elapsed. This predefined time-interval is started at a cold start of the gas discharge lamp.
In FIG. 7 of US 2005/0088114, a minimum value of the voltage signal is detected. Then, a predefined voltage value is added to said minimum value, to find a turning point voltage value. This is a relatively inaccurate way to find the turning point voltage value. For a particular kind of lamp, the minimum value appears for example one second after a cold start of the lamp. The minimum value itself as well as its moment of appearance may depend on many circumstances, like a lamp temperature at a start and a lamp age. According to the invention, a more accurate way to find the boundary voltage value has been realized by measuring a voltage value of the voltage signal at a fixed moment in time, such as for example, for a particular kind of lamp, five, six or seven seconds after a cold start of the gas discharge lamp, or such as for example, for a more general kind of lamp, any time value between two and ten seconds, and by calculating the boundary voltage value as a function of this measured voltage value. As a result, an improved device has been created.
A further advantage might be that a more accurate boundary voltage value results in more accuracy and in less time required to reach the steady state.
Instead of measuring the voltage value of the voltage signal present across the gas discharge lamp, a voltage value may be measured of another voltage signal derived from said voltage signal present across the gas discharge lamp. Said derivation may for example be done a voltage divider. The function may take this derivation into account and/or may be based on this derivation. Said calculator can be any kind of analog and/or digital machine in hardware and/or software.
According to an embodiment, the device is defined by the calculator being arranged for calculating the boundary voltage value as a function of a minimum voltage value of the voltage signal and as a function of a steady state voltage value of the voltage signal. By calculating the boundary voltage value as a function of said measured voltage value and of said minimum voltage value and said steady state voltage value, an even more accurate boundary voltage value will be determined, owing to the fact that three functions are combined.
Alternatively, only one of the functions of the minimum voltage value of the voltage signal and of the steady state voltage value of the voltage signal may be combined with the function of the measured voltage value of the voltage signal. Preferably, each function may be of the type f(x)=p x+q with p and q being selected per function. In other words, each function f(x) may comprise a term p x+q with p and q being selected per function.
Further alternatively, the boundary voltage value may be calculated as a function of more than one minimum voltage value of the voltage signal. Two or more minimum voltage values of the voltage signal may occur for two or more different situations, such as for example two or more different starting temperatures of the lamp. Each minimum voltage value of the voltage signal may only be a minimum value in a certain time-interval, so the voltage signal may have different minimum values in different time-intervals.
According to an embodiment, the device is defined by the function of the measured voltage value of the voltage signal comprising a first weighting factor, the function of the minimum voltage value of the voltage signal comprising a second weighting factor, and the function of the steady state voltage value of the voltage signal comprising a third weighting factor, a sum of the weighting factors being equal to a predefined value. This way, a most accurate boundary voltage value can be determined.
In case the boundary voltage value is calculated as a function of more than one minimum voltage value of the voltage signal, more than one weighting factor may need to be used, such as for example one weighting factor per minimum voltage value.
According to an embodiment, the device is defined by the first amount of power comprising an increasing amount of power during a first part of the first state while supplying a maximum current to the gas discharge lamp, the first amount of power comprising a maximum amount of power during a second part of the first state, and the second amount of power comprising a decreasing amount of power until the steady state voltage value of the voltage signal has been reached. The increasing amount of power results from increasing voltage values of the voltage signal in combination with the maximum current. The maximum amount of power results from increasing voltage values of the voltage signal in combination with a decreasing current. The decreasing amount of power results from increasing voltage values of the voltage signal in combination with an even more decreasing current.
According to an embodiment, the device is defined by the power versus voltage graph defining a third state for supplying a third amount of power, the third state starting at the steady state voltage value of the voltage signal, the third amount of power comprising a stable amount of power. A stable amount of power is an amount that changes less than for example 1% per second, preferably less than 0.1% per second.
According to an embodiment, the device is defined by the control circuit comprising a memory for storing the measured voltage value of the voltage signal and comprising a processor for updating the measured voltage value stored in the memory. After a start of the gas discharge lamp, a stored measured value is used to calculate a boundary voltage value, and a more recent measured value is used for updating the stored measured value.
According to an embodiment, the device is defined by the control circuit comprising a memory for storing the measured voltage value of the voltage signal and the minimum voltage value of the voltage signal and the steady state voltage value of the voltage signal and comprising a processor for updating the voltage values stored in the memory. After a start of the gas discharge lamp, stored values are used to calculate a boundary voltage value, and more recent values are used for updating the stored values.
According to an embodiment, the device is defined by the device being an electronic ballast for the gas discharge lamp.
According to a second aspect of the invention, a system is provided comprising the device and comprising the supply circuit, in which case the system can be a power supply, and/or comprising the gas discharge lamp, in which case the system can be a light. A combination of a power supply and a light is not to be excluded.
According to a third aspect of the invention, a method is provided for providing an amount of power to a gas discharge lamp, the method comprising a step of controlling a supply of the power according to a power versus voltage graph, the power versus voltage graph defining a first state for supplying a first amount of power, the power versus voltage graph defining a second state for supplying a second amount of power, the first state ending at a boundary voltage value of a voltage signal and the second state starting at the boundary voltage value, the step of controlling comprising a sub-step of calculating the boundary voltage value as a function of a measured voltage value of the voltage signal that has been measured after a predefined time-interval from a cold start of the gas discharge lamp.
According to a fourth aspect of the invention, a computer program product is provided for performing the step of the method.
According to a fifth aspect of the invention, a medium is provided for storing and comprising the computer program product.
Embodiments of the system and of the method correspond with the embodiments of the device.
An insight might be that for a power versus voltage graph of a gas discharge lamp, the boundary voltage value should (also) depend on a relatively stable voltage value of the voltage signal.
A basic idea might be that for a power versus voltage graph of a gas discharge lamp, the boundary voltage value is to be calculated as a function of a measured voltage value of the voltage signal that has been measured after a predefined time-interval from a cold start.
A problem to provide an improved device has been solved.
A further advantage might be that a more accurate boundary voltage value results in more accuracy and in less time required to reach the steady state.
These and other aspects of the invention are apparent from and will be elucidated with reference to the embodiment(s) described hereinafter.
In the drawings:
In the
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An output of the calculator 30 constitutes the control output of the control circuit 3 and an input of the calculator 30 is for example connected to a processor 32. The processor 32 is connected to a memory 31 and is for example connected to a voltage determining circuit 33 and a feeding circuit 34. The feeding circuit 34 for example feeds the calculator 30, the memory 31, the processor 32 and the voltage determining circuit 33. The voltage determining circuit 33 determines the measured voltage value UT of the voltage signal by for example measuring this voltage value after a predefined time-interval from a cold start of the gas discharge lamp 2 in response to an instruction from the processor 32. The voltage determining circuit 33 may further determine other voltage values of the voltage signal by for example measuring these voltage values and supplying the measured voltage values to the processor 32 to for example find the minimum voltage value Umin of the voltage signal and the steady state voltage value Ustst of the voltage signal by for example comparing the measured voltage values with each other. The processor 32 may thereto comprise an analog comparator or comparing function, alternatively this analog comparator or comparing function may be located inside the voltage determining circuit 33 etc. Alternatively, the voltage determining circuit 33 may comprise an analog to digital converter, and the processor 32 may then comprise a digital comparator or comparing function, alternatively this digital comparator or comparing function may be located inside the voltage determining circuit 33 etc. The calculator 30 may form part of the processor 32, or vice versa.
The memory 31 stores the measured voltage value UT of the voltage signal and the processor 32 updates the measured voltage value UT stored in the memory 31. The memory 31 may further store the minimum voltage value Umin of the voltage signal and the steady state voltage value Ustst of the voltage signal and the processor 32 may further update these voltage values stored in the memory 31. After a start of the gas discharge lamp 2, one or more stored values may be used to calculate the boundary voltage value Ub, and one or more recent values may be used for updating the stored values.
The units 30-33 may be hardware units and/or software units and may form part of a computer or a microcontroller or analog and/or digital control circuitry etc.
In the
Unorm=(U−Ustst)/(Ub−Ustst). Other ways to normalize the voltage are not to be excluded. This normalized voltage value Unorm is offered to a block 46 that for example calculates a polynomial 15 x3+13 x2+7 x+35 or any other kind of polynomial. At blocks 47 and 48, a maximum power Pmax and a minimum power Pmin are defined, and at a block 49, the information from the blocks 46, 47 and 48 is converted into an output power defined at a block 50 and to be provided to the gas discharge lamp 2. Thereby, according to an embodiment, as long as the calculated polynomial has a value between the maximum power Pmax and the minimum power Pmin this value is offered, if said value is larger than the maximum power Pmax, this maximum power Pmax is offered, and if said value is smaller than the minimum power Pmin, this minimum power Pmin is offered.
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A possible algorithm might be as follows. After the predefined time-interval T, such as for example five, six or seven seconds for a particular kind of gas discharge lamp 2, or such as for example for a more general kind of lamp any time value between two and ten seconds, the voltage value UT of the voltage signal is to be measured. This measured voltage value UT of the voltage signal is to be compared with a previous voltage value UT stored in the memory 31. In response to a first comparison result (non-cold start) the previous voltage value UT stored in the memory 31 is to be replaced by the measured voltage value UT of the voltage signal. In response to a different second comparison result (cold start) the previous voltage value UT stored in the memory 31 is to be replaced by a new voltage value UT depending on for example the measured voltage value UT of the voltage signal and one or more, such as for example 20, previously stored voltage values UT.
After another predefined time-interval, such as for example 120 seconds for a particular kind of gas discharge lamp 2, the steady state voltage value Ustst of the voltage signal is to be measured. This steady state voltage value Ustst of the voltage signal is to be compared with a previous steady state voltage value Ustst stored in the memory 31. In response to a first comparison result the previous steady state voltage value Ustst stored in the memory 31 is to be replaced by the measured steady state voltage value Ustst of the voltage signal. In response to a different second comparison result the previous steady state voltage value Ustst stored in the memory 31 is to be replaced by a new steady state voltage value Ustst depending on for example the measured steady state voltage value Ustst of the voltage signal and one or more previously stored steady state voltage values Ustst. With the updated voltage values, a new boundary voltage value Ub is to be calculated, and the new boundary voltage value Ub and the new steady state voltage value Ustst can be used for a next calculation of the amount of power to be provided etc.
Of course, in addition, after having measured/determined one of the voltage values UT and Ustst, a measurement/determination result can be used for updating the (calculated) other one.
After a cold start of an existing particular gas discharge lamp 2, UT and Ustst can be updated. After a non-cold start of the existing particular gas discharge lamp 2, UT can be kept as it is and Ustst can be updated. After a cold start of a novel particular gas discharge lamp 2, UT and Ustst are to be determined. After a non-cold start of the novel particular gas discharge lamp 2, UT can be kept as it is and Ustst can be updated.
Summarizing, a device 1 for providing an amount of power to a gas discharge lamp 2 comprises a control circuit 3 for controlling a supply circuit 4 for supplying the power according to a power versus voltage graph 10. A calculator 30 calculates a boundary voltage value as a function of a measured voltage value of a voltage signal that has been measured after a predefined time-interval from a cold start of the gas discharge lamp 2. A more accurate boundary voltage value results in more accuracy and in less time required to reach a steady state. The calculator 30 may be arranged for calculating the boundary voltage value as a function of a minimum voltage value of the voltage signal and of a steady state voltage value of the voltage signal. A memory 31 may store voltage values of the voltage signal and a processor 32 may update these voltage values.
While the invention has been illustrated and described in detail in the drawings and foregoing description, such illustration and description are to be considered illustrative or exemplary and not restrictive; the invention is not limited to the disclosed embodiments. For example, it is possible to operate the invention in an embodiment wherein different parts of the different disclosed embodiments are combined into a new embodiment.
Other variations to the disclosed embodiments can be understood and effected by those skilled in the art in practicing the claimed invention, from a study of the drawings, the disclosure, and the appended claims. In the claims, the word “comprising” does not exclude other elements or steps, and the indefinite article “a” or “an” does not exclude a plurality. A single processor or other unit may fulfill the functions of several items recited in the claims. The mere fact that certain measures are recited in mutually different dependent claims does not indicate that a combination of these measured cannot be used to advantage. A computer program may be stored/distributed on a suitable medium, such as an optical storage medium or a solid-state medium supplied together with or as part of other hardware, but may also be distributed in other forms, such as via the Internet or other wired or wireless telecommunication systems. Any reference signs in the claims should not be construed as limiting the scope.
Number | Date | Country | Kind |
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08168612 | Nov 2008 | EP | regional |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/IB2009/054877 | 11/3/2009 | WO | 00 | 4/27/2011 |
Publishing Document | Publishing Date | Country | Kind |
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WO2010/052641 | 5/14/2010 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
20020117973 | Ito | Aug 2002 | A1 |
20040113567 | Yamauchi | Jun 2004 | A1 |
20040217717 | Breuer | Nov 2004 | A1 |
20050029964 | Ishibashi | Feb 2005 | A1 |
20050088114 | Okura | Apr 2005 | A1 |
20060012318 | Ichikawa et al. | Jan 2006 | A1 |
20060197473 | Fukuwa | Sep 2006 | A1 |
20070210723 | Kumagai | Sep 2007 | A1 |
20080192211 | Kitagawa | Aug 2008 | A1 |
20080205055 | Schug | Aug 2008 | A1 |
20090206775 | Green | Aug 2009 | A1 |
Number | Date | Country |
---|---|---|
102004032187 | Mar 2005 | DE |
1901589 | Mar 2008 | EP |
4272696 | Sep 1992 | JP |
2006302829 | Nov 2006 | JP |
2007005022 | Jan 2007 | JP |
2006073310 | Aug 2008 | JP |
2006164677 | Aug 2008 | JP |
2008243469 | Oct 2008 | JP |
Entry |
---|
First Office Action dated Apr. 15, 2013, China Application No. 200980144373.3, 11 pages. |
Grant Notification dated Oct. 18, 2013, China Application No. 200980144373.3, 3 pages. |
Office Action dated Sep. 1, 2015, Japan Application No. 2011-533920, 12 pages. |
Office Action dated Apr. 5, 2016, Japan Application No. 2011-533920, 11 pages. |
EPO as ISA, PCT/IB2009/054877 filed Nov. 3, 2009, “International Search Report and Written Opinion”, dated Oct. 7, 2010, 11 pages. |
Office Action dated Jul. 3, 2014, Japan Application No. 2011-533920, 4 pages. |
Office Action dated Feb. 13, 2014, Japan Application No. 2011-533920, 4 pages. |
Office Action dated Aug. 27, 2013, Japan Application No. 2011-533920, 5 pages. |
Number | Date | Country | |
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20110204822 A1 | Aug 2011 | US |