[0001] The present invention relates to circuits for energizing gaseous discharge lamps
such as fluorescent lamps or high intensity discharge lamps. More particularly, it
relates to a ballast using solid state switches and adapted to energize the lamps
with high frequency current. Ballast circuits of this type are normally designed to
receive energy from a conventional 60 Hz. cycle as is commonly available, and by means
of frequency inversion, generate a higher frequency signal (in the range of 25-100
KHz.) to energize the lamps.
[0002] The advantages of high-frequency lamp excitation such as more efficient conversion
of electrical energy to light output are well-known. However, in the past, and despite
the generally accepted principle that high frequency excitation is more efficient,
there have been many attempts at high frequency ballasts, but few have met with commercial
success. Even those high frequency ballasts which have been commercially produced
have one or more disadvantages to them.
[0003] Another important factor in evaluating high frequency ballast circuits is the effect
that the excitation current has on lamp life. With the rise in energy costs, both
ballast manufacturers and lamp manufacturers have, in the last few years, given increased
attention to high frequency excitation. Lamp manufacturers have concluded that lamp
life may seriously be diminished if the crest factor of the excitation current is
not maintained within certain limits.
[0004] When, for example, fluorescent lamps were energized by magnetic ballasts at 60 Hz.,
the crest factor for lamp current (which is defined as the ratio of peak current to
RMS current) was approximately 1.41 because 60 Hz. voltage is sinusoidal.
[0005] As lamp manufacturers designed lamps for operation at high frequencies, it became
clear that the crest factor of lamp current must be maintained within a desired range.
It is believed that the heating effect of lamp current is sufficient to heat the cathode
of the lamp (in fluorescent lamps) to the point where it is capable of emitting 1.7
times the RMS current. Circuits which exceed a crest factor of 1.7 necessarily exceed
the thermionic emmission capability of the cathode, and this results in sputtering
of the cathode material and shortening lamp life.
[0006] Thus, the requirement for achieving a desirable crest factor in high frequency excitation
of fluorescent lamps has become an important criterion if a ballast is to receive
commercial acceptance. A desired crest factor can be obtained simply by using large
inductors and capacitors to filter the line voltage, but the power requirements of
these components make the expensive and somewhat bulky, despite operation at higher
frequencies.
[0007] EP-A-0081884 discloses a circuit for converting a supply frequency into a higher
frequency for energizing a gas discharge lamp. The lamp is energized through switching
devices, the frequency of switching being dependent on the current flowing through
the switching devices. A measure of this current in obtained with the aid of a differential
amplifier controlling a pulse generator which in turn controls a transistor control
circuit which modifies the frequency of switching the transistors in proportion to
the magnitude of the current flowing through the transistors. In this arrangement,
the control operates in response to current in the rectifier and the present invention
differs in operating in response to current in the switches. Furthermore, the inverter
circuit used in the present invention is non-resonant.
[0008] The invention is set out in Claim 1 and alternatively in Claims 18 an 19.
[0009] An example of the invention will now be described with reference to the accompanying
drawings in which:
Fig. 1 is a circuit schematic diagram of a ballast circuit incorporating the present
invention with portions in functional block form;
Fig. 2 is an idealized voltage timing diagram illustrating operation of the system
of Fig. 1;
Figs. 3 and 4 also illustrate voltage waveforms which assist in understanding the
operation of the circuit of Fig. 1; and
Fig. 5 is a factional block schematic diagram of an alternate circuit incorporating
the present invention.
[0010] Referring first to FIG. 1, and before describing the individual circuit components
in detail, an overall description of the principal components and their operation
will be given. Input electrical power is received from a conventional source, such
as 60 Hz, 115 v. or 220 v. power line and coupled to input terminals 10. The input
power is fed to a full-wave rectifier bridge circuit generally designated 12, the
output of which is fed to an input terminal 13 of a power transformer generally designated
15. Terminal 13 may be a center tap of first and second primary windings designated
16, 17 respectively, as illustrated.
[0011] If the only voltage fed to the terminal 13 (called the B+ or source voltage) were
a full-wave rectified sinusoidal voltage, then the voltage at the terminal 13 would
vary from a maximum or peak down to zero and then back to the peak with the same polarity.
In order to prevent the voltage from going to zero (which would mean that the lamps
would not be energized during the period when the input voltage is less than a minimum
operating threshold value), a make-up voltage supply generally designated by reference
numeral 20 stores power during peaks of the B voltage and couples it along a line
21 to the terminal 13 of the power transformer 15 during periods when the voltage
falls below a predetermined value of the B+ source. These periods are sometimes referred
to as inter-cusp periods.
[0012] Thus, the B+ voltage at terminal 13 is a full-wave rectified sinusoidal voltage which
does not diminish below a predetermined, fixed minimum level. That minimum level preferably
is approximately one-half the peak voltage, is seen in idealized form in FIG. 2, line
L1 and generally designated by reference numeral 25.
[0013] Returning to FIG. 1, a power inverter circuit generally designated 28 includes first
and second semi-conductor switches 30, 31 which, as illustrated, may be N-channel,
enhancement mode MOSFET's such as are commercially available under the designation
IRF 730 from General Electric Co. or RCA, Inc. The power switches 30, 31 are turned
"on" (i.e., switched to a conducting state) when a positive level voltage is fed to
the gate input lead. When that level is removed, the associated power switch is turned
"off" (i.e., non-conducting).
[0014] Power switches 30, 31 (sometimes referred to as "inverter switches") are connected
in series with series-connected primary windings 16, 17. The junction between power
switches 30, 31 is designated 32 and connected to ground through a current-sensing
resistor 33.
[0015] The power transformer includes a secondary winding generally designated 34 which
is coupled to a lamp circuit generally designated 35 and including at least one gaseous
discharge lamp such as a fluorescent lamp, seen at 36. In this case, a second lamp
37 is included in the lamp circuit. Persons skilled in the art will readily appreciate
that the illustrated circuit, once it is understood, may be employed to energize and
operate other lamp circuit configurations or different gaseous discharge lamps, such
as so-called High Intensity Discharge (HID) lamps.
[0016] Also included in the lamp circuit 35 is a passive reactance element, in this case
an inductor 38 (which may be the leakage inductance of the power transformer) is illustrated
schematically as connected in series with the lamps and transformer secondary so that
any current flowing in the lamps 36, 37 also flows in the inductor 38. Logic circuitry
generally designated by reference numeral 40 controls the state of power switches
30, 31 in current mode control, and it also provides a suitable turn-off voltage and
timing sequence for applying the control voltages for the power switches.
[0017] A first comparator circuit 42 senses the voltage at junction 32 which is a signal
representative of the current flowing in whichever of the power switches 30, 31 is
conducting at any given time. Comparator 42 senses the signal on its negative or inverting
input lead and compares it with a fixed reference voltage V
ST.PT. (standing for a "set point" voltage) and generates an output signal when the sensed
"current" signal (actually a voltage representation of current) reaches a predetermined
value determined by the set point voltage.
[0018] The logic circuit 40 includes a flip-flop circuit 43 which changes its output state
each time a positive-going signal appears at its clock input, C. The output signals
of the flip-flop 43 are coupled through gating circuitry to be described for turning
the inverter power switches 30, 31 on and off in mutually exclusive time periods so
that they operate in "push-pull" fashion with only one semiconductor switch conducting
at any given time.
[0019] A brief description of the operation of the circuitry described above will not be
given with the object of explaining a principal feature of the system, namely, achieving
high frequency, uninterrupted excitation of the lamps using a 60 Hz. line source while
regulating lamp current. If the lamp current were a pure sinusoid of constant peak
amplitude, a crest factor of approximately 1.41 would be obtained.
[0020] The low frequency supply voltage is derived from the input line voltage connected
to the source lines 10 and rectified by bridge circuit 12. It is fed to the input
terminal 13 of the primary winding 15 of the power transformer. As mentioned, the
voltage appearing at the junction 13 from output of the bridge rectifier circuit 12
would be a full-wave rectified voltage, but it is modified by power fed from the make-up
power source 20 coupled from the winding 19 of the transformer 15 and storing energy
in a capacitor to be described which is then coupled back to the junction 13 of the
power transformer during periods when the output voltage of the bridge circuit 12
is reduced below a predetermined level. Referring to line L-1 of FIG. 2, the solid
line generally designated 25 represents the B+ voltage appearing at the junction 13.
Each cycle of the B+ voltage includes a portion of a sinusoidal wave form such as
is designated 44a which increases to a peak and then reduces, and a fixed DC minimum
level represented by the horizontal line 44b. During those intercusp periods when
the sinusoidal voltage would ordinarily reduce to zero volts as indicated by the dashed
line between the peaks (or cusps) of the sinusoidal input voltage, the make-up voltage
source 20 supplies a DC level to sustain inverter operation.
[0021] Assuming operation during steady state, and, for a moment, ignoring the effect of
the amplitude variation of the input voltage just discussed, it will be assumed that
power switch 30 has just been turned on. A current will flow in the direction of arrow
I₁ through the primary winding 17 of the transformer 15, the power switch 30, and
the current-sensing resistor 33 to ground.
[0022] At this time, power switch 31 is non-conducting, and a voltage will appear at the
secondary winding 34 of the power transformer to energize the lamp load circuit. The
current I₁ builds up generally linearly because of the inductive reactance in the
circuit, so the voltage at the junction 32 increases in accordance with, and is representative
of, the current flowing in the power switch 30. It is also representative of the currentflowing
in the lap circuit, as persons skilled in the art will appreciate.
[0023] The voltage at junction 32 is coupled to the negative (or inverting) input of comparator
42. When that signal exceeds the set point voltage V
ST.PT. which is fed to the positive (or non-inverting) input of comparator 42, the comparator
42 will switch states. The output signal, in turn, is fed to the logic circuitry 40
and causes the flip-flop circuit 43 to change its output state, thereby turning off
the power switch 30, and very shortly thereafter, turning on power switch 31, causing
a similar current to flow in the primary winding 16 of the power transformer as indicated
by the arrow I₂ in FIG. 1.
[0024] In order to explain the effect of the variation in amplitude of the B+ voltage, reference
is made to FIG. 3. Since the current increases in the sensing resistor 33 at the initial
portion of an exponential increase, it can be considered to be substantially linear.
If the voltage (or current) is rising to one level (for example, the level V₁ in FIG.
3), the voltage will be a line as seen at 46 in FIG. 3. If, however, the voltage is
rising toward a second, higher level, such as that designated at V₂ in FIG. 3, then
the voltage will increase as represented by line 47. Assuming that each of the voltages
46, 47 is then terminated at a fixed level V₀ which is lower than the levels V₁ and
V₂, voltage 46 will reach the level V₀ in time t₅, whereas voltage 47 will reach level
V₀ at time t₄, which is shorter than time t₅. Thus, as the instantaneous voltage at
input junction 13 gets greater, the resulting current slope (either I₁ or I₂) will
increase, and the voltage at junction 32 will rise faster. Correspondingly, as the
magnitude of the B+ voltage at junction 13 decreases, the voltage at junction 32 will
have a correspondingly slower rise time, and will reach a fixed voltage in a slightly
longer time. Thus, as the B+ voltage increases, the frequency of the inverter current
will increase and as the B+ voltage decreases, the frequency of the inverter current
will decrease. However, because the inverter switches are operated in current mode
control, the peak value of the inverter current will be constant and thus regulated,
even though its frequency varies monotonically with the magnitude of the B+ voltage.
[0025] In terms of the operation of the circuitry thus far described, when the voltage at
the input junction 13 is relatively high, such as at time t₁ in line L-1 of FIG. 2
(corresponding to a peak of the sinusoidal input voltage), the voltage at junction
32 will rise toward the level V
ST.PT. more rapidly, and the comparator 42 will switch states more rapidly than when the
input voltage is lower, such as at time t₂ on line L-1 of FIG. 2. Similarly, the time
taken for the voltage 32 to rise to the level V
ST.PT. will be even longer when the voltage at the input junction 13 is derived solely from
the make-up supply 20, such as at t₃ in line L-1 of FIG. 2. In all cases, however,
the power switches reverse states when the current following in the switch then conducting
reaches a predetermined value as represented by V
ST.PT..
[0026] Referring now to line L-3 of FIG. 2, there are shown three sets or ramp waveforms
designated respectively 48, 49 and 50 and depicting, in idealized form, the voltage
at junction 32 at times t₁, t₂ and t₃ on line L-1 of FIG. 2. The first ramp of each
of the sets of ramps 48, 49 and 50 represents the voltage at junction 32 during the
time when power switch 30 is conducting, and the subsequent ramp of each set indicates
the corresponding voltage at the time when power switch 31 is conducting. The resulting
voltage waveform on the secondary of the power transformer is seen on line L-2 of
FIG. 2. This waveform has also been drawn in idealized form to illustrate the principle
involved rather than to try to depict accurately the exact frequencies or voltages,
as is customary.
[0027] In summary, when the source voltage is relatively high, the frequency of the current
in the primary winding (and thus the secondary winding), of the power transformer
15 is at a relative high frequency; and when the input source voltage is relatively
low, the frequency of the load current is relatively low. On the other hand, when
the frequency of the load current is high, the impedance of inductor 38 is proportionately
greater; and when the frequency of the lamp current is relatively low, the impedance
offered by the inductor 38 is correspondingly low. Thus, the overall effect is to
maintain the peak value of lamp current substantially constant.
[0028] The resulting load current, as seen in line L-4 of FIG. 2, has a peak amplitude which
is substantially constant, although the frequency of the load current varies from
a minimum frequency during time t₃, to approximately twice the minimum frequency at
time t₁, when the B+ voltage is at a maximum. In both cases, however, the excitation
frequency of the lamp is in the range of 30 KHz-75 KHz, thereby achieving the benefits
of high frequency excitation, but the crest factor of the lamp current is maintained
in a desired range, as discussed more fully below. Further, current regulation and
improved crest factor are achieved without sensing lamp current in the secondary of
the transformer 15 (which requires inductive sensors such as current transformers)
thereby minimizing bulk, cost and quality assurance restrictions. These features are
achieved with an uncomplicated current mode push-pull inverter circuit with a reliable
yet inexpensive circuit arrangement requiring no special magnetic circuit elements,
such as might be required if the current were sensed in the secondary of the power
transformer.
[0029] The circuit shown in FIG. 1 will now be described in more detail. The input section
includes a fuse 52 in one of the lines 10 for system protection, a metal oxide varistor
(MOV) over-voltage protection device 53 for protection against transient excursions
of the input voltage, as electromagnetic interference filter circuit generally designated
54 and including series inductors L1 and L2 and shunt capacitors C1 and C2 in each
input line, and the previously identified bridge rectifier circuit 12. The filter
circuit not only prevents electromagnetic interference generated in the circuit from
being coupled to the power lines, but it isolates the inverter switches from any high
frequency transients on the input power lines. A high frequency bypass capacitor 55
is also coupled between the output of the bridge circuit 12 and ground.
[0030] Low voltage for the logic circuitry is derived from the output of the bridge circuit
12 through a resistor 56 to a zener diode 57. A filter capacitor 58 and a high frequency
bypass capacitor 59 are connected across the diode 57, the low voltage source being
designated V
cc.. The voltage V
cc for the logic supply is less than the output voltage of the bridge circuit 12. This
voltage difference can be achieved economically by a voltage drop across a series
resistor (i.e., resistor 56) in the illustrated embodiment without substantially reducing
operating efficiency and without more costly components because arranging the power
switches in a current mode control, push-pull configuration requires less logic circuitry
and, therefore, less power than many alternative designs.
[0031] Turning now to the power inverter circuit 28, for the most part it has already been
described. However, each of the power switches 30, 31 has a "snubber" circuit 60 connected
across its power terminals for protecting the devices against high frequency transient
signals.
[0032] Turning now to the make-up voltage source, winding 19 of transformer 15 couples power
fed from the source lines 10 to a second bridge rectifier circuit 61, the output of
which is connected to a storage capacitor 62. The other output terminal of the bridge
circuit 61 is connected through a resistor 63 to ground; and a high frequency by-pass
capacitor 64 is connected across the storage capacitor 62. A diode 65 couples the
make-up voltage source to the input terminal 13 of the power transformer.
[0033] The previously described input signal to comparator 42 from the junction 32 is coupled
through a resistor 67; and a capacitor 68 is connected between the negative input
terminal of comparator 42 and ground and serves as a high frequency shunt. Additional
signals are coupled to the negative input terminal of comparator 42 from the source
voltage at junction 13 through resistor 69 and from the signal developed across resistor
63 through a resistor 70. The functions of these two signals will be described below.
[0034] Turning now to the logic circuitry 40, the flip-flop 43 is a "D" type flip-flop,
having a data input designated D and a clock input designated C. The Q output of flip-flop
43 is coupled through a NAND gate 72 and an inverter 73 to the gate lead of power
switch 30. The Q output of flip-flop 43 is coupled through a NAND gate 74 and an inverter
75 to the gate input of power switch 31. The Q output of flip-flop 43 is also connected
to the data input D. The output of comparator 42 is connected through an inverter
76 to the clock input C of the flip-flop 43.
[0035] Turning now to the upper left-hand portion of FIG. 1, an initialization (or start-up)
circuit generally designated 80 senses input voltage and inhibits operation of the
logic circuit 40 until the input voltage level has reached a predetermined threshold,
as during start up. The circuit includes a comparator 81 having its positive (non-inverting)
input connected to a voltage divider circuit comprising resistors 82, 83 connected
between the low voltage source V
cc and ground. The output of comparator 81 is connected through a diode 84 to a junction
designated 85 which is the input to the inverter 76 described above. A resistor 86
is connected between the source V
cc and the junction 85. A resistor 87 is connected between the low voltage source and
the output of comparator 81, and a resistor 88 is connected between the positive input
and the output of comparator 81. The resistors 87, 88 provide positive feedback to
the input of comparator 81 so that once it is switched it will remain switched unless
the input voltage diminishes appreciably as will be understood. This hysteresis effect
of the start-up circuit prevents undesired switching of the logic enable circuit when
the source voltage is passing through the threshold for operation.
[0036] A resistor 90 is connected between the low voltage source and a zener diode 91. The
voltage developed across the diode 91 is coupled directly to the negative input of
comparator 81.
[0037] The function of the initialization circuit 80 is to inhibit operation of the power
switches until the low voltage source has stabilized when the circuit is initially
energized. Resistors 82 and 83 form a voltage divider network which is designed such
that the voltage fed to the non-inverting input of comparator 81 is less than the
reference voltage across diode 91 until the diode conducts and clamps the voltage
at the non-inverting input of comparator 81 which by design does not occur until V
cc has nearly reached its desired value. During this initialization period, the output
of the comparator 81 is clamped to ground, thereby holding the voltage at junction
85 at a low level through diode 84. The junction 85 is also connected to inputs of
the NAND gates 72, 74, and serves as an "enable" signal. When the output of the comparator
81 is relatively low, the gates 72, 74 are disabled, so that the power switches cannot
conduct. A positive or relatively high signal is required on the gate lead of a power
switch to cause it to conduct.
[0038] A minimum frequency oscillator generally designated 95 is set at a frequency below
the normal operating range and does not affect the operation of the circuit unless
the operating frequency of the push-pull inverter falls below the design range or
stops operating altogether. In such a case, the minimum frequency oscillator serves
to operate the inverter at a minimum frequency which preferrably varies with the magnitude
of the input supply voltage B+.
[0039] The minimum frequency oscillator 95 includes a capacitor 96 having one terminal grounded
and the other terminal connected to the low voltage power source through a diode designated
99 of a reverse polarity, and it is also connected to the B+ voltage through a resistor
100. The positive terminal of capacitor 96 is also connected through a resistor 101
to the output of a comparator circuit 102. A comparator circuit 103 has its positive
input connected to the previously described reference voltage generated across the
diode 91 (as is the negative input of the comparator 102). The negative input of comparator
103 is connected to the positive terminal of the capacitor 96.
[0040] The positive input of the comparator 102 is connected through an inverter 105 to
the output of the previously described inverter 76.
[0041] The set point voltage, V
ST.PT., is generated across a capacitor 108, the positive terminal of which is connected
to the movable arm of a potentiometer generally designated 109. A fixed resistor 110
is connected in series with the fixed resistor of the potentiometer 109 to the reference
voltage developed across zener diode 91. As previously mentioned, the set point voltage
is fed to the positive input of the comparator 42.
[0042] As mentioned, the minimum frequency oscillator 95 serves to establish a minimum switching
frequency for the inverter (i.e., the power switches 30, 31) so that in the event
comparator 42 does not trigger the flip-flop 43, the minimum frequency oscillator
45 will perform that function. Otherwise, it would be possible to have one of the
power switches 30, 31 be left on indefinitely, thereby saturating the power transformer
and preventing normal operation of the circuit.
[0043] Once the low voltage source has stabilized after the initial build-up period following
turn on, so that the gates 72, 74 are enabled by the output of comparator 81, the
normal operation of the circuit proceeds as follows. Assuming the power switch 30
has just been switched to a conducting state, the voltage at the junction 32 increases
as current flows through resistor 33. That voltage signal is fed through resistor
67 to the negative input of comparator 42, the positive input of which is at the fixed
set point voltage. When the increasing voltage appearing on the negative input of
comparator 42 exceeds the set point voltage, the output of comparator 42 switches
to a relatively low voltage which is fed directly to the gates 72, 74 to disable them
for a short period of time to permit the flip-flop 43 to switch its state and to permit
current flowing through power switch 30 to return to zero (which does not happen intantaneously).
[0044] When the current flowing through the power switch 30 (which had just been turned
off) returns to a zero level, and after the output state of flip-flop 43 has changed,
the output of comparator 42 again goes positive because current stops flowing through
switch 30 so the voltage at terminal 32 diminishes beneath the set point voltage.
This causes gates 72, 74 once more to be enabled, but the signal inputs from the flip-flop
43 have now assumed their complementary states so that whereas in the previous half
cycle, power switch 30 had been conducting, when the gates 72, 74 are once more enabled,
power switch 31 is turned on.
[0045] As illustrated in idealized form in FIG. 4, the voltage on the negative (inverting)
input of comparator 42 is represented by the ramp voltage 107. When that voltage exceeds
the set point voltage, the output of comparator 42 goes relatively low, thereby disabling
the switches 72, 74 and turning off the power switch 30 at time t₆ in FIG. 4. The
current flowing through the switch takes some finite time to reduce to zero as indicated
by the portion 108, although the lines 107 and 108 are not necessarily drawn to the
same time scale. The same output signal of comparator 42 which disables the gates
72, 74 is inverted by inverter 76 and fed to the clock input C of the flip-flop 43
to cause its outputs to change state because the Q output is connected to the data
input D of the flip-flop. The gates 72, 74 are disabled before flip-flop 43 changes
its state so that the switching signals on the output leads of the flip-flop are not
fed directly to the power switches.
[0046] At the same time, the output signal of the inverter 76 is coupled through inverter
105, the output signal of which is a negative pulse which causes comparator 102 to
switch to a low output level and thereby create a low impedance path for quickly discharging
capacitor 96. This resets the timing of the minimum frequency oscillator and synchronizes
it with the switching of the inverter switches under normal operating conditions.
[0047] If the voltage at junction 32 does not rise to the set point voltage within the design
period of the minimum frequency oscillator 95, the minimum frequency oscillator will
nevertheless sustain operating at a minimum frequency as follows. When comparator
102 changes state from a relatively low voltage output to a relatively high voltage
output, the output of the comparator is floating so that it becomes a comparatively
high impedance and is not a substantial factor in charging capacitor 96. Rather, capacitor
96 is charged as a function of the magnitude of voltage of the B+ supply (through
resistor 100). Thus, when the voltage on capacitor 96 exceeds the reference voltage
across zener diode 91, comparator 103 will switch its output from a relatively high
voltage level to a low voltage level, thereby disabling gates 72, 74, triggering the
clock input of the flip-flop 43 via inverter 76, and causing the output of comparator
102 to go low. This discharges capacitor 96 which, in turn, causes comparator 103
to change states once more so that its output goes to a relatively high voltage level.
As described above, when the signal at junction 85 goes positive, gates 72, 74 are
enabled once more, but since the state of flip-flop 43 has changed, the complementary
power switch (30, 31) will conduct this half cycle.
[0048] The timing of the charging of capacitor 96 depends primarily on the value of the
capacitor and the value of resistor 100, and the magnitude of the B+ voltage. The
minimum operating frequency of the minimum frequency oscillator (which is not a fixed
frequency oscillator, it will be observed, because of the influence on the charging
timer capacitor 96 caused by the value of the B+ voltage), is designed to be lower
than the minimum operating frequency of the inverter during normal operation. This
insures that the inverter will be operating as designed for normal operation and not
under the minimum frequency oscillator. When, during normal operation, the output
of the comparator 42 goes low (representative of the current in the then-conducting
switch reaching a predetermined peak value), the gates 72, 74 are disabled, as described,
and the flip-flop 43 is clocked, but also, the same signal is fed through inverter
105 to cause the comparator 102 to change states and have its output grounded, thereby
discharging capacitor 96 and resetting the time base for the minimum frequency oscillator.
Thus, the minimum frequency oscillator is synchronized automatically each half cycle,
with the switching on of the power switches. The minimum frequency oscillator comes
into play only after the current in current sensing resistor 33 and the voltage at
junction 32 do not exceed the set point voltage during a period of time longer than
the time it takes capacitor 96 to charge to the reference voltage on the positive
input of comparator 103.
[0049] If the B+ voltage is relatively high, then the time for the voltage at junction 32
to reach the set point voltage will be correspondingly less. Similarly, the period
of the minimum frequency oscillator 95 will be correspondingly less and the operating
frequency will be higher because, with the B+ voltage comparatively high, charging
current through resistor 100 to charge the timing capacitor 96 will be correspondingly
greater, thereby reducing the time for the capacitor to charge to the reference voltage
on the positive input of comparator 103.
[0050] Thus, the base or set frequency of the minimum frequency oscillator increases and
decreases as the B+ voltage increases and decreases. Persons skilled in the art will
appreciate that having the base frequency of the minimum frequency oscillator 95 vary
with the value of B+ voltage reduces the requirements and thus the size of the power
transformer. Reduced size, in turn, reduces its cost.
[0051] There is a short delay time in turning the power switches off--that is, between the
time the voltage input to the switching level and the time the signal is propagated
through the comparator and goes to cause the current through the switch to stop flowing.
This causes a slight overshoot in the current flowing through the switches after the
switching level at 32 is reached so that the current flowing at the time of shut-off
may be above the desired current level. Since the rate of rise of current flowing
in the switches is a function of the applied voltage (that is, the B+ voltage), this
overshoot will also be a function of applied voltage. In other words, the overshoot
will be greater when the B+ voltage is at its peak than when it is at the make-up
voltage level. In order at least partially to compensate this effect, resistor 69
is connected between the B+ voltage terminal 13 and the inverting input of comparator
42. As the B+ voltage becomes greater, more current is fed through resistor 69, causing
comparator 42 to change states earlier than otherwise would occur, and thereby compensating
for the overshooting current mentioned above.
[0052] Resistor 70 and its associated circuitry compensates for yet another effect. The
storage capacitor 62 which stores power for the make-up voltage during the inter-cusp
period is charged by the bridge circuit 61 only when the B+ voltage is near a peak,
and during that time, energy drawn from the source reduces the energy available to
the lamp circuit. Since a constant load current is desired, and some input power is
diverted to the make-up power source as just indicated, a signal is generated across
resistor 63 during the time when capacitor 62 is being charged. This signal is a negative
signal which draws a slight current through resistor 70 and causes the current through
resistor 33 to rise to a slightly higher value before the input signal to the inverting
input of comparator 42 will switch. The additional power is coupled to store energy
in storage capacitor 62 for use during the inter-cusp period of source voltage and
thereby partly compensate for the effect of draining power during voltage peaks of
the primary source voltage to charge the make-up capacitor 62 by extending the "on"
time of the power switches as a function of the magnitude of the B+ voltage.
[0053] Inductor 38 is illustrated in FIG. 1 as a separate component. Preferably, however,
it is incorporated into the magnetic design of the power transformer 15. In either
case, whether a separate component is included or the transformer 15 is designed to
have the desired higher impedance at higher frequency, the overall effect is that
as the inverter operating frequency increases, the impedance seen by the power switches
also increases and the lamp load current remains substantially constant. By way of
example, for the range of operating frequency indicated below, if the inductor 38
is designed as the leakage inductance of the power transformer 15, it may be approximately
4 mhy (millihenry).
[0054] By way of further illustration, with the components indicated in Table A below, and
with two 34-watt lamps in the lamp circuit, the operating frequency of the power inverter
under normal conditions (i.e., without the minimum frequency oscillator being actuated)
varies from 30 KHz to 75 KHz; and a crest factor of approximately 1.6 has been obtained.
With the components indicated in Table B below, the minimum frequency oscillator operates
in a frequency range from approximately 23 KHz to 40 KHz.
TABLE A
| Component |
Value |
| resistor 33 |
0.5 ohm |
| diode 91 |
4.7 volts (break-down) |
| resistor 63 |
1.0 ohm |
| resistor 70 |
3.3 K ohm |
| resistor 32 |
1.0 K ohm |
| resistor 69 |
330 K ohm |
TABLE B
| Component |
Value |
| diode 91 |
4.7 volts (break-down) |
| diode 57 |
12 volts (Vcc) |
| resistor 100 |
330 K ohm |
| capacitor 96 |
.001 µfd. |
[0055] In addition to the features and advantages mentioned above in connection with particular
aspects of the embodiment illustrated in FIG. 1, persons skilled in the art will appreciate
that measuring inverter current in the circuit connected to the primary winding of
the power transformer, as distinguished from the load circuit in the secondary of
the transformer further reduces cost because it eliminates any need for a current
transformer in the secondary or load circuit.
[0056] Referring now to FIG. 5, there is shown an alternative embodiment of the invention
which uses current mode regulation as described above, but which includes the switches
and power transformer in a half-bridge circuit configuration, as distinguished from
the push-pull arrangement shown in FIG. 1 and described above. The half-bridge circuit
has isolating transformers for sensing current in, and for driving the power switches
and these components will increase cost. The half-bridge configuration also requires
increased capacity in the low voltage (i.e., logic) power supply. On the other hand,
the half-bridge circuit arrangement permits the use of power MOSFET switches with
lower voltage and higher current ratings which currently are less expensive. Thus,
the half-bridge circuit may be used, for example, with a 277 v. line voltage.
[0057] In the half-bridge circuit of FIG. 5, the B+ voltage is derived with a full-wave
rectifier and a make-up source as described in connection with the embodiment of FIG.
1 Corresponding elements in FIG. 5 are given the same reference numeral as in FIG.
1 followed by an "A". Thus, the MOSFET power switches are designated 30A and 31A and
are connected in series across the B+ supply. Capacitors 220 and 221 are also connected
in series across the B+ supply voltage; and the primary winding 222 of power transformer
223 forms the diagonal branch of the bridge circuit. The lamp load circuit 35A is
connected to the secondary winding 224 of the power transformer. Although not illustrated
in the drawing of FIG. 5, power transformer 223 has a leakage inductance similar to
that designated 38 in FIG. 1 and performs a similar function.
[0058] In the embodiment of FIG. 5, current flowing in the conducting power switch is sensed
by a current transformer 226 having its primary coil connected in series with primary
winding 222. Alternatively, the current transformer could be in the secondary of the
power transformer. The output signal of current transformer 226 is coupled to the
input of logic circuit 140 which may be substantially the same as the previously described
logic circuit 40, except that it is responsive to the absolute value of the output
of current transformer 226 (i.e., not polarity sensitive). In particular, the output
of the current transformer 226 may be coupled through a diode bridge (which gives
a signal representative of the absolute value of the input signal and is not sensitive
to the polarity of the input signal) to the junction of resistor 70 and capacitor
68 of FIG. 1 (which is the same as the non-inverting input of comparator 42). The
inverter drive signals of inverter circuits 73, 75 are, in this case, coupled to the
primary winding 228 of a drive transformer 229 having two secondary windings 230 and
231 which are connected in the gate circuits respectively of the power switches 30A,
30B. Resistor 67 of the FIG. 1 embodiment is eliminated. The drive transformer 229
has its secondary windings arranged in a polarity to cause only one of the switches
to conduct at any given time. When switch 30A conducts, for example, current flows
from the positive terminal of the B+ voltage through MOSFET 30A, the primary of current
transformer, the primary winding 222 of the power transformer (from the plus to the
minus terminal) and capacitor 221 to the negative terminal of the B+ supply. When
the value of current sensed by the current transformer reaches the preset value, the
bistable circuit of the logic circuit switches states; and after switch 30A becomes
non-conducting, switch 30B is turned on and current flows through capacitor 220, primary
winding 222 (this time in the opposite direction), the current transformer and switch
30B. Thus, an alternating current is generated in the power transformer to energize
the lamp load circuit 35A.
[0059] As in the first embodiment, the frequency of operation of the inverter increases
and decreases, but the peak value of current flowing in the primary (and secondary)
of the power transformer 223 is substantially constant. As the inverter frequency
increases, the leakage reactance of the power transformer is such as to present an
increased impedance so that the peak value of load current also remains substantially
constant and the crest factor of load current remains below a desired value.
1. The combination with a load circuit of an electronic circuit for receiving input electrical
power at a lower frequency for energizing said load circuit (35,35A) at higher frequency
comprising:
voltage source means (12) receiving said input electrical power for generating
a source voltage having a varying magnitude and a predetermined minimum voltage;
non-resonant inverter circuit means (28) including first and second switching means
(30,31) connected in circuit with said voltage source means and said load circuit;
and reactance circuit means (38) connected in circuit with said load circuit, the
operating frequency range of said inverter circuit means and the impedance of said
reactance circuit means being such that as the magnitude of said source voltage changes
the operating frequency of said inverter circuit means changes and the resulting impedance
of said reactance circuit means is such that the peak amplitude of current in said
load circuit remains substantially constant, characterised by logic circuit means
(40) responsive to a sensed signal representing only current flowing in said switching
means for operating said first and second switching means to conduct alternately by
switching a conducting one of said switching means to a non-conducting state when
the current flowing therein reaches a predetermined value and immediately thereafter
switching the other of said switching means to conduct until the current flowing therein
reaches a predetermined value, whereby the frequency of current in said load circuit
varies as the magnitude of said source voltage varies.
2. A combination as claimed in Claim 1 wherein said voltage source means comprises rectifier
circuit means for generating a full-wave rectified voltage; and make-up power means
(20) receiving power from said full-wave rectified voltage for storing energy for
use during periods when the output voltage of said rectifier circuit means falls below
said predetermined minimum voltage.
3. A combination as claimed in Claim 2 wherein said logic circuit means (40) includes
a bistable circuit (43) having complimentary outputs for determining the states of
said first and second switching means respectively; sensing circuit means (33) for
generating said sensed current signal representative of the instantaneous current
flowing through said switching means; and first comparator circuit means (42) receiving
said sensed signal for changing the state of said bistable circuit means when said
sensed current reaches a predetermined set point signal representative of a desired
current level flowing in said switching means.
4. A combination as claimed in Claim 3 wherein said load circuit (35) includes a power
transformer (15) coupled in circuit with said voltage source means and said first
and second switching means, whereby said sensed current signal is a ramp signal having
a rise time slope which increases when the magnitude of said source voltage increases
and which decreases when the magnitude of said source voltage decreases, thereby to
change the operating frequency of said inverter circuit means.
5. A combination as claimed in Claim 4 wherein said sensing circuit means (33) comprises
resistive means connected in circuit with said first and second switching means and
in the primary circuit (16,17) of said power transformer (15).
6. A combination as claimed in Claim 4 further comprising first compensating circuit
means (69) for adding a first compensating signal to said sensed signal when the amplitude
of the voltage of said voltage source means is relatively high, thereby at least partially
to compensate for current overshoot in the shutting off of said first and second switching
means.
7. A combination as claimed in Claim 6 further comprising second compensating circuit
means (70) responsive to the charging of said make-up voltage source means for adding
a second compensating signal to said sensed signal to increase the conduction time
of said switching means when input power is being tapped to charge said make-up voltage
source means.
8. A combination as claimed in Claim 1 further comprising minimum frequency oscillator
circuit means (95) connected in circuit with said inverter circuit means (28) and
responsive to the operation thereof for operating said inverter circuit means if said
inverter circuit means does not switch within a predetermined maximum time period,
whereby said minimum frequency oscillator circuit means will continue to operate said
inverter circuit means at a minimum frequency in the absence of said sensed current
signal.
9. A combination as claimed in Claim 8 further comprising timing circuit means for determining
the operating frequency of said minimum frequency oscillator circuit means; and third
compensating circuit means for modifying said timing circuit means to increase the
frequency of said minimum frequency oscillator circuit means when the magnitude of
said source voltage increases.
10. A combination as claimed in Claim 1 further comprising initialization circuit means
(80) for disabling said logic circuit means for a period of time after input power
is applied thereto and until said source voltage has reached a predetermined threshold.
11. A combination as claimed in Claim 10 wherein said initialisation circuit (80) includes
a comparator circuit (81) for comparing a signal representative of logic source voltage
and a reference voltage for generating an enable signal when said logic source voltage
is greater than said reference voltage and for coupling said enable signal signal
to said logic circuit means.
12. A combination as claimed in Claim 1 further comprising a power transformer (15) coupled
in circuit with said inverter circuit means and said load circuit for delivering power
at said higher frequency to said load circuit and wherein said reactance circuit means
is leakage inductance of said power transformer.
13. A combination as claimed in Claim 1 further comprising an electromagnetic interference
filter circuit (54) between said input power and said voltage source means for providing
high frequency isolation between said circuit and input power lines.
14. A combination as claimed in Claim 7 further including a low voltage supply circuit
(56-59) for said logic circuit means receiving power from said voltage source and
characterised in having a series resistance (56) for effecting a drop in voltage between
said voltage source and the output of said low voltage supply circuit.
15. A combination as claimed in Claim 11 comprising circuit means (88) for generating
a positive feedback on said comparator circuit whereby said initialization circuit
has an hysteresis effect in its operating characteristic.
16. A combination as claimed in Claim 1 wherein said first and second switching means
are connected in series having a first junction between them and said load circuit
includes a transformer having first and second primary windings having a second junction
between them and wherein said voltage source means is connected between said first
and second junctions and said first and second primary windings are in series with
each other and in parallel with said series-connected first and second switching means;
said switching means being operated in push-pull relation.
17. A combination as claimed in Claim 1 wherein said first and second switching means
are connected in series having a first junction between them and said voltage source
connected across said series-connected first and second switching means; and further
comprising first and second capacitors connected in series with each other and to
provide a second junction between them and connected in parallel with said series-connected
first and second switching means; and wherein said load circuit is connected between
said first and second junctions.
18. An electronic ballast circuit receiving electrical power from a source at one frequency
and providing power at higher frequency comprising:
load circuit means including at least one gaseous discharge lamp;
a power transformer having at least first and second primary windings and an output
coupled to said load circuit for energizing the load circuit;
first bridge circuit means coupled to said source for generating a full-wave rectified
source voltage;
make-up voltage means for supplying a generally constant voltage to the output
of said bridge circuit means during periods when said full-wave rectified source voltage
falls below a predetermined value, said make-tip voltage means receiving power at
said high frequency;
first and second power switching means connected in non-resonant circuit respectively
with said first and second primary windings of said power transformer to provide power
at said higher frequency;
logic circuit means for operating said first and second power switching means in
current mode control, reponsive only to the instantaneous current flowing in said
first and second power switching means, by turning off a conducting one of said switching
means when the current flowing therein reaches a predetermined value, and for immediately
thereafter causing the other power switching means to conduct, said logic circuit
means tinder normal operation repetitively and continuously causing said switching
means to conduct and to turn off in mutually exclusive and successive time relationship,
such that the frequency of switching of said power switching means is increased as
the instantaneous value of the source voltage increases, thereby to regulate the peak
current in said power switching means to a substantially constant value; and
reactance circuit means associated with said load circuit such that as the source
voltage increases and the frequency of operation of said power switching means increases,
the impedance of said load circuit increases, whereby the peak current flowing in
said gaseous discharge lamp is rendered substantially constant irrespective of variations
in the amplitude of said solace voltage.
19. A non-resonant electronic frequency inverter circuit receiving input electrical power
at a lower frequency and energizing a load circuit, including at least one gaseous
discharge lamp, in a range of higher frequencies, comprising:
first and second switching means receiving said input power and energizing said
load circuit;
logic circuit means for operating said first and second switching means in current
mode control, responsive only to the instantaneous current flowing in said first and
second power switching means such that said first and second switching means operate
at said higher frequency range and the frequency of current in said load circuit varies
as the magnitude of said source voltage varies; and
reactance circuit means associated with said load circuit such that as the source
voltage increases and the frequency of operation of said power switching means increases,
the impedance of said load circuit increases, whereby the peak current flowing in
said gaseous discharge lamp is rendered substantially constant irrespective of variations
in the amplitude of said source voltage.
1. Combinaison avec un circuit de charge d'un circuit électronique pour recevoir l'énergie
électrique d'entrée sous une fréquence plus basse afin d'exciter ledit circuit de
charge (35, 35A) à une fréquence supérieure comprenant :
- un moyen de source de tension (12) recevant ladite énergie électrique d'entrée pour
créer une tension source ayant une amplitude variable et une tension minimale déterminée
d'avance ;
- un moyen de circuit onduleur non résonant (28) compenant un premier et un second
moyens de commutation (30, 31) connectés dans le circuit avec lesdits moyens de source
de tension et ledit circuit de charge ; et un moyen de circuit à réactance (38) connecté
dans ledit circuit de charge, la gamme des fréquences de fonctionnement dudit moyen
de circuit onduleur et l'impédance dudit moyen de circuit à réactance étant telle
que si l'amplitude de ladite tension source varie, la fréquence de fonctionnement
dudit moyen de circuit onduleur varie et que l'impédance résultante dudit moyen de
circuit à réactance soit telle que l'amplitude crête du courant dans ledit circuit
de charge reste sensiblement constante, caractérisée par un moyen de circuit logique
(40) sensible à un signal détecté représentant uniquement le courant circulant dans
lesdits moyens de commutation pour faire fonctionner lesdits premier et second moyens
de commutation de manière à les rendre conducteurs en alternance en commutant le moyen
conducteur parmi lesdits moyens de commutation vers un état non conducteur quand le
courant qui le traverse atteint une valeur prédéterminée et immédiatement esnuite
en commutant l'autre desdits moyens de commutation à l'état conducteur jusqu'à ce
que le courant qui le traverse atteigne une valeur déterminée d'avance, de sorte que
la fréquence du courant dans ledit circuit de charge varie avec l'amplitude de la
tension de ladite source.
2. Combinaison selon la revendication 1, dans laquelle ledit moyen de soruce de tension
comprend un moyen de circuit redresseur pour créer une tension redressée onde entière
; et un moyen de source d'appoint (20) recevant de l'énergie de ladite tension redressée
onde entière afin de stocker de l'énergie à utiliser pendant les périodes au cours
desquelles la tension de sortie dudit moyen de circuit redresseur descend au-dessous
de ladite tension minimale déterminée d'avance.
3. Combinaison selon la revendication 2, dans laquelle lesdits moyens de circuit logique
(40) comprennent un circuit bistable (43) ayant des sorties complémentaires pour déterminer
les états desdits premier et second moyens de commutation respectivement ; un moyen
de circuit détecteur (33) pour former ledit signal de courant détecté représentatif
du courant instantané traversant lesdits moyens de commutation ; et un premier moyen
de circuit comparateur (42) recevant ledit signal détecté pour faire changer d'état
ledit moyen de circuit bistable quand ledit courant détecté atteint un signal de consigne
déterminé d'avance représentatif d'un niveau de courant souhaité qui circule dans
lesdits moyens de commutation.
4. Combinaison selon la revendication 3, dans laquelle ledit circuit de charge (35) comprend
un transformateur de puissance (15) couplé en circuit avec ledit moyen de source de
tension et avec lesdits premier et second moyens de commutation, de façon que ledit
signal de courant détecté soit un signal croissant ayant une pente d'augmentation
en fonction du temps qui augmente quand l'amplitude de ladite tension source augmente
et qui diminue quand l'amplitude de ladite tension source diminue, de manière à modifier
la fréquence de fonctionnement dudit moyen de circuit onduleur.
5. Combinaison selon la revendication 4, dans laquelle ledit moyen de circuit détecteur
(33) comprend un moyen résistif connecté en circuit avec lesdits premier et second
moyens de commutation et dans le circuit primaire (16, 17) dudit transformateur de
puissance (15).
6. Combinaison selon la revendication 4, comprenant en outre un premier moyen de circuit
compensateur (69) pour ajouter un premier signal de compensation audit signal détecté
quand l'amplitude de la tension dudit moyen de source de tension est relativement
élevée, de façon à compenser au moins partiellement le dépassement de courant au moment
de la coupure dudit premier et dudit second moyens de commutation.
7. Combinaison selon la revendication 6, comprenant en outre un second moyen de circuit
compensateur (70) sensible à la charge dudit moyen de source de tension d'appoint
pour ajouter un second signal compensateur audit signal détecté afin d'augmenter la
durée de conduction desdits moyens de commutation quand l'énergie d'entrée est branchée
de manière à charger ledit moyen de source de tension d'appoint.
8. Combinaison selon la revendication 1, comprenant en outre un moyen de circuit oscillateur
à fréquence minimale (95) connecté en circuit avec ledit moyen de circuit onduleur
(28) et sensible à son fonctionnement pour faire fonctionner ledit moyen de circuit
onduleur si ledit moyen de circuit onduleur n'est pas commuté au cours stopd'un intervalle
de temps maximal déterminé d'avance, de manière que ledit circuit oscillateur à fréquence
minimale continue à faire fonctionner ledit moyen de circuit onduleur à une fréquence
minimale en l'absence dudit signal de courant détecté.
9. Combinaison selon la revendication 8, comprenant en outre un moyen de circuit de base
de temps pour déterminer la fréquence de fonctionnement dudit moyen de circuit oscillateur
à fréquence minimale ; et un troisième moyen de circuit compensateur pour modifier
ledit moyen de circuit de base de temps afin d'augmenter la fréquence dudit moyen
de circuit oscillateur à fréquence minimale quand l'amplitude de ladite tension source
augmente.
10. Combinaison selon la revendication 1, comprenant en outre un moyen de circuit d'initialisation
(80) pour invalider ledit moyen de circuit logique pendant une période de temps après
l'application de l'énergie d'entrée à ce circuit et jusqu'à ce que ladite tension
source ait atteint un seuil prédéterminé.
11. Combinaison selon la revendication 10, dans laquelle ledit circuit d'initialisation
(80) comporte un circuit comparateur (81) pour comparer un signal représentatif de
la tension source logique et une tension de référence afin de former un signal de
validation lorsque ladite tension source logique est supérieure à ladite tension de
référence et pour appliquer ledit signal de validation audit moyen de circuit logique.
12. Combinaison selon la revendication 1, comprenant en outre un transformateur de puissance
(15) couplé en circuit avec ledit moyen de circuit onduleur et avec ledit circuit
de charge pour délivrer de l'énergie à ladite fréquence supérieure audit circuit de
charge et dans laquelle ledit moyen de circuit à réactance est une inductance de fuite
dudit transformateur de puissance.
13. Combinaison selon la revendication 1, comprenant en outre un circuit de filtrage des
parasites électromagnétiques (54) entre ladite énergie d'entrée et lesdits moyens
de source de tension pour créer un isolement en haute fréquence entre ledit circuit
et les lignes d'alimentation d'entrée.
14. Combinaison selon la revendication 7, comprenant en outre un circuit d'alimentation
à basse tension (56-59) pour lesdits moyens de circuit logique recevant de l'énergie
de ladite source de tension et caractérisée en ce qu'elle comprend une résistance
série (56) pour créer une chute de tension entre ladite source de tension et la sortie
dudit circuit d'alimentation à basse tension.
15. Combinaison selon la revendication 11, comprenant un moyen de circuit (88) pour établir
une contre-réaction positive sur ledit circuit comparateur de sorte que ledit circuit
d'initialisation ait un effet d'hystérésis dans sa caractéristique de fonctionnement.
16. Combinaison selon la revendication 1, dans laquelle lesdits premier et second moyens
de commutation sont montés en série en ayant entre eux une première jonction et dans
laquelle ledit circuit de charge comprend un transformateur ayant un premier et un
second enroulements primaires ayant entre eux une seconde jonction et dans laquelle
ledit moyen de source de tension est monté entre ladite première et ladite seconde
jonctions et dans laquelle lesdits premier et second enroulements primaires sont montés
en série entre eux et en parallèle avec lesdits premier et second moyens de commutation
montés en série ; lesdits moyens de commutation étant utilisés en montage symétrique.
17. Combinaison selon la revendication 1, dans laquelle lesdits premier et second moyens
de commutation sont montés en série et ont entre eux une première jonction et ladite
source de tension est connectée aux bornes desdits premier et second moyens de commutation
montés en série ; et comprend en outre un premier et un second condensateurs montés
en série avec entre eux une seconde jonction, ces condensateurs étant montés en parallèle
avec lesdits premier et second moyens de commutation montés en série ; et dans laquelle
ledit circuit de charge est branché entre lesdites première et seconde jonctions.
18. Circuit ballast électronique recevant de l'énergie électrique d'une source sur une
première fréquence et délivrant de l'énergie à une fréquence plus élevée comprenant
:
- un moyen de circuit de charge comprenant au moins une lampe à décharge en atmosphère
gazeuse ;
- un transformateur de puissance ayant au moins un premier et un second enroulements
primaires et une sortie couplée audit circuit de charge pour exciter le circuit de
charge ;
- un premier moyen de circuit en pont couplé à ladite source pour créer une tension
source redressée onde entière ;
- un moyen de tension d'appoint pour appliquer une tension généralement constante
à la sortie dudit moyen de circuit en pont pendant les périodes au cours desquelles
ladite tension source redressée onde entière descend au-dessous d'une valeur prédéterminée,
ledit moyen de tension d'appoint recevant de l'énergie à ladite fréquence élevée ;
- un premier et un second moyens de commutation de puissance connectés dans un circuit
non résonant respectivement avec lesdits premier et second enroulements primaires
dudit transformateur de puissance pour créer de l'énergie à ladite fréquence supérieure
;
- un moyen de circuit logique pour commander lesdits premier et second moyens de commutation
de puissance en mode de commande de courant, sensible uniquement au courant instantané
passant dans ledit premier et second moyens de commutation de puissance, en amenant
au blocage un moyen conducteur parmi lesdits moyens de commutation quand le courant
qui le traverse atteint une valeur déterminée d'avance, et pour forcer immédiatement
ensuite l'autre moyen de commutation de puissance à conduire, ledit moyen de circuit
logique en fonctionnement normal forçant de manière répétitive et continue lesdits
moyens de commutation à conduire et à se bloquer suivant une relation dans le temps
successive et mutuellement exclusive, de façon que la fréquence de commutation desdits
moyens de commutation de puissance augmente avec la valeur instantanée de la tension
source, afin de réguler le courant crête dans lesdits moyens de commutation de puissance
à une valeur sensiblement constante ; et
- un moyen de circuit à réactance associé audit circuit de charge de façon qu'au moment
où la tension source augmente et où la fréquence de fonctionnement desdits moyens
de commutation de puissance augmente, l'impédance dudit circuit de charge augmente,
de telle sorte que le courant crête circulant dans ledit tube à décharge en atmosphère
gazeuse soit rendu sensiblement constant quelles que soient les variations d'amplitude
de ladite tension source.
19. Circuit onduleur de fréquence électronique non résonant recevant de l'énergie électrique
d'entrée à une fréquence inférieure et excitant un circuit de charge comportant au
moins un tube à décharge en atmospghère gazeuse, dans une plage de fréquences supérieures,
comprenant :
- un premier et un second moyens de commutation recevant ladite énergie d'entrée et
excitant ledit circuit de charge ;
- un moyen de circuit logique pour faire fonctionner lesdits premier et second moyens
de commutation en mode de commande de courant, sensible uniquement au courant instantané
circulant dans lesdits premier et second moyens de commutation de manière que lesdits
premier et second moyens de commutation fonctionnent dans ladite gamme de fréquences
supérieures et que la fréquence du courant circulant dans ledit circuit de charge
varie quand l'amplitude de ladite tension source varie ; et
- un moyen de circuit à réactance associé audit circuit de charge de manière qu'au
moment où la tension source augmente et où la fréquence de fonctionnement desdits
moyens de commutation de puissance augmente, l'impédance dudit circuit de charge augmente,
de manière que le courant crête circulant dans ledit tube à décharge en atmosphère
gazeuse soit rendu sensiblement constant quelles que soient les variations de l'amplitude
de ladite tension source.
1. Die Kombination mit einer Lastschaltung einer elektronischen Schaltung zum Empfangen
elektrischer Eingangsleistung mit einer geringeren Frequenz zum Versorgen der Lastschaltung
(35, 35A) mit Energie bei einer höheren Frequenz, umfassend:
eine Spannungsquelleneinrichtung (12), die die elektrische Eingangsleistung empfängt,
zum Erzeugen einer Quellenspannung mit variabler Größe und einer vorbestimmten Minimalspannung;
eine resonanzfreie Inverterschaltungseinrichtung (28) mit einer ersten und einer zweiten
Schalteinrichtung (30, 31), die mit der Spannungsquelleneinrichtung und der Lastschaltung
verschaltet ist; und eine Reaktanzschaltungseinrichtung (38), die mit der Lastschaltung
verschaltet ist, wobei der Betriebsfrequenzbereich der Inverterschaltungseinrichtung
und die Impedanz der Reaktanzschaltungseinrichtung derart ist, daß dann, wenn die
Größe der Quellenspannung sich ändert, die Betriebsfrequenz der Inverterschaltungseinrichtung
sich ändert, und die resultierende Impedanz der Reaktanzschaltungseinrichtung derart
ist, daß die Spitzenamplitude des Stroms in der Lastschaltung im wesentlichen konstant
bleibt, gekennzeichnet durch eine logische Schaltungseinrichtung (40), die auf ein
erfaßtes Signal hin, welches nur den Strom durch die Schalteinrichtung darstellt,
die erste und die zweite Schalteinrichtung zum abwechselnden Leiten ansteuert, und
zwar durch Schalten einer leitenden der Schalteinrichtungen in einen nicht leitenden
Zustand, wenn der darin fließende Strom einen vorbestimmten Wert erreicht, und unmittelbar
danach Umschalten der anderen der Schalteinrichtung, daß sie leitet, bis der darin
fließende Strom einen vorbestimmten Wert erreicht, wodurch die Frequenz des Stromes
in der Lastschaltung variiert, wie die Große der Quellenspannung variiert.
2. Kombination nach Anspruch 1, wobei die Spannungsquelleneinrichtung eine Gleichrichterschalteinrichtung
zum Erzeugen einer vollwellen-gleichgerichteten Spannung; und eine Ausgleichsenergieeinrichtung
(20) umfaßt, die Energie von der vollwellen-gleichgerichteten Spannung empfängt, um
Energie für eine Verwendung in Perioden zu speichern, in denen die Ausgangsspannung
der Gleichrichterschalteinrichtung unter die vorbestimmte Minimalspannung fällt.
3. Kombination nach Anspruch 2, wobei die logische Schalteinrichtung (40) eine bistabile
Schaltung (43) mit komplementären Ausgängen zum Bestimmen des jeweiligen Zustands
der ersten bzw. der zweiten Schalteinrichtung; eine Erfassungsschaltungseinrichtung
(33) zum Erzeugen des erfaßten Stromsignals, das den momentanen Strom durch die Schalteinrichtung
darstellt; und eine erste Komparatorschaltuugseinrichtung (42) umfaßt, die das erfaßte
Signal zum Verändern des Zustands der bistabilen Schaltungseinrichtung empfängt wenn
der erfaßte Strom ein vorbestimmtes Setzpunktsignal erreicht, das einen gewünschten
Pegel des Stroms durch die Schaltungseinrichtung darstellt.
4. Kombination nach Anspruch 3, wobei die Lastschaltung (35) einen Leistungstransformator
(15) umfaßt, der mit der Spannungsquelleneinrichtung und der ersten sowie der zweiten
Schaltungseinrichtung verschaltet ist, wodurch das gemessene Stromsignal ein Rampensignal
mit einer Neigung in der Anstiegszeit ist, die ansteigt, wenn die Größe der Quellenspannung
steigt, und die sinkt , wenn die Größe der Quellenspannung sinkt, wodurch die Betriebsfrequenz
der Invertierschaltungseinrichtung geändert wird.
5. Kombination nach Anspruch 4, wobei die Erfassungsschaltungseinrichtung (33) eine Widerstandseinrichtung
umfaßt, die mit der ersten und der zweiten Schalteinrichtung verschaltet und mit der
Primärwicklung (16, 17) des Leistungstransformators (15) verbunden ist.
6. Kombination nach Anspruch 4, ferner umfassend eine erste Kompensationsschaltungseinrichtung
(69) zum Hinzufügen eines ersten Kompensationssignals zu dem erfaßten Signal, wenn
der Wert der Spannung der Spannungsquelleneinrichtung relativ hoch ist, wodurch zumindest
teilweise der Überstrom beim Ausschalten der ersten und zweiten Schalteinrichtung
kompensiert wird.
7. Kombination nach Anspruch 6, ferner umfassend eine zweite Kompensationsschaltungseinrichtung
(70), die auf das Laden der Ausgleichsspannungs-Quelleneinrichtung hin ein zweites
Kompensationssignal dem erfaßten Signal hinzufügt, um die Leitungszeit der Schaltungseinrichtung
zu verlängern, wenn die Eingangsleistung angezapft wird, um die Ausgleichssspannung-Quelleneinrichtung
zu laden.
8. Kombination nach Anspruch 1, ferner umfassend eine Minimalfrequenz-Oszillatorschaltungseinrichtung
(95), die mit der Inverterschaltungseinrichtung (28) verschaltet ist und auf deren
Betrieb hin die Inverterschaltungseinrichtung ansteuert, wenn die Inverterschaltungseinrichtung
nicht innerhalb einer vorbestimmten maximalen Zeitspanne schaltet wodurch die Minimalfrequenz-Oszillatorschaltungseinrichtung
damit fortfährt die Inverterschaltungseinrichtung in Abwesenheit eines erfaßten Stromsignals
mit einer Minimalfrequenz zu betreiben.
9. Kombination nach Anspruch 8, ferner umfassend eine Zeitgeberschalteinrichtung zum
Bestimmen der Betriebsfrequenz der Minimalfrequenz-Oszillatorschaltungseinrichtung;
und eine dritte Kompensationsschaltungseinrichtung zum Modifizieren der Zeitgeberschaltungseinrichtung,
um die Frequenz der Minimalfrequenz-Oszillatorschaltungseinrichtung zu steigern, wenn
die Größe der Quellenspannung steigt.
10. Kombination nach Anspruch 1, ferner umfassend eine Initialisierungsschaltungseinrichtung
(80) zum Sperren der logischen Schalteinrichtung für eine Zeitspanne nach dem Anlegen
der Eingangsleistung daran, und zwar bis die Quellenspannung eine vorbestimmte Schwelle
erreicht hat.
11. Kombination nach Anspruch 10, wobei die Initialisierungsschaltung (80) eine Komparatorschaltung
(81) zum Vergleichen eines die logische Quellenspannung darstellenden Signals mit
einer Referenzspannung zum Erzeugen eines Freigabesignals, wenn die logische Quellenspannung
größer als die Referenzspannung ist, und zum Abgeben des Freigabesignals an die logische
Schaltungsteinrichtung umfaßt.
12. Kombination nach Anspruch 1, ferner umfassend einen Leistungstransformator (15), der
mit der Inverterschaltungseinrichtung und der Lastschaltung verschaltet ist zum Verteilen
der Leistung mit der höheren Frequenz an die Lastschaltung, und wobei die Reaktanzschaltungseinrichtung
die Leckinduktanz des Leistungstransformators darstellt.
13. Kombination nach Anspruch 1, ferner umfassend eine elektromagnetische Interferenzfilterschaltung
(54) zwischen der Eingangsleistungs- und der Spannungsquelleneinrichtung zur Hochfrequenzisolation
zwischen den Schaltungs- und den Eingangsleistungsleitungen.
14. Kombination nach Anspruch 7, ferner umfassend eine Niederspannungsversorgungsschaltung
(56 - 59) für die logische Schaltungseinrichtung, die Leistung von der Spannungsquelle
empfängt und dadurch gekennzeichnet ist, daß sie einen Serienwiderstand (56) zum Bewirken
eines Spannungsabfalls zwischen der Spannungsquelle und dem Ausgang der Niederspannungsversorgungsschaltung
umfaßt.
15. Kombination nach Anspruch 11, umfassend eine Schaltungseinrichtung (88) zum Erzeugen
einer positiven Rückkopplung auf die Komparatorschaltung, wodurch die Initialisierungsschaltung
einen Hystereseeffekt in ihrer Betriebscharakteristik aufweist.
16. Kombination nach Anspruch 1, wobei die erste und die zweite Schalteinrichtung seriell
verschaltet sind, und zwar mit einem ersten Verbindungsanschluß zwischen einander,
und die Lastschaltung einen Transformator mit einer ersten und einer zweiten Primärwicklung
aufweist, die einen zweiten Verbindungsanschluß zwischen einander aufweisen, und wobei
die Spannungsquelleneinrichtung zwischen den ersten und den zweiten Verbindungsanschluß
geschaltet ist und die erste und die zweite Wicklung in Serie miteinander und parallel
mit den seriell verschalteten ersten und zweiten Schalteinrichtungen verschaltet sind;
wobei die Schalteinrichtungen im Gegentakt betrieben sind.
17. Kombination nach Anspruch 1, wobei die ersten und zweiten Schalteinrichtungen seriell
verschaltet sind, und zwar mit einem ersten Verbindungsanschluß zwischen einander,
und die Spannungsquelle über den seriell verschalteten ersten und zweiten Schalteinrichtungen
liegt; und wobei sie ferner erste und zweite Kondensatoren umfaßt, die in Serie miteinander
verschaltet sind und einen zweiten Verbindungsanschluß zwischen einander aufweisen
sowie parallel zu den seriell verschalteten ersten und zweiten Schalteinrichtungen
liegen; und wobei die Lastschaltung zwischen die ersten und zweiten Verbindungsanschlüsse
geschaltet ist.
18. Elektronisches Vorschaltgerät, das elektrische Leistung von einer Quelle mit einer
Frequenz empfängt und Leistung mit einer höheren Frequenz abgibt, umfassend:
eine Lastschaltungseinrichtung mit mindestens einer Gasentladungslampe;
einen Leistungstransformator mit mindestens einer ersten und einer zweiten Primärwicklung
und einem Ausgangsanschluß, der mit der Lastschaltung zum Versorgen der Lastschaltung
mit Energie verbunden ist;
eine erste Brückenschaltungseinrichtung, die mit der Quelle zum Erzeugen einer vollwellen-gleichgerichteten
Quellenspannung verbunden ist;
eine Ausgleichsschaltungseinrichtung zum Abgeben einer im wesentlichen konstanten
Spannung an den Ausgangsanschluß der Brückenschaltungseinrichtung während Zeitspannen,
in denen die vollwellen-gleichgerichtete Quellenspannung unter einen vorbestimmten
Wert fällt, wobei die Ausgleichsspannungseinrichtung Leistung mit der hohen Frequenz
empfängt;
erste und zweite Leistungsschalteinrichtung, die resonanzfrei mit der ersten bzw.
der zweiten Primärwicklung des Leistungstransformators verschaltet sind, um Leistung
mit der hohen Frequenz abzugeben;
eine logische Schaltungseinrichtung zum Betreiben der ersten und der zweiten Leistungsschalteinrichtung
unter Stromsteuerung, abhängig nur von dem jeweiligen Stromfluß in der ersten und
der zweiten Schalteinrichtung, durch Ausschalten einer leitenden der Schalteinrichtungen,
wenn der darin fließende Strom einen vorbestimmten Wert erreicht, und zum unmittelbar
darauffolgenden Bewirken, daß die andere Schalteinrichtung leitet, wobei die logische
Schalteinrichtung im normalen Betrieb wiederholt und durchgängig bewirkt, daß die
Schalteinrichtungen leiten und abschalten, und zwar in einander ausschließenden und
aufeinanderfolgenden Zeitabschnitten derart, daß die Frequenz des Schaltens der Leistungsschalteinrichtung
angehoben wird, wie der momentane Wert der Quellenspannung steigt, wodurch der Spitzenstromwert
in den Leistungsschalteinrichtungen auf einen im wesentlichen konstanten Wert eingeregelt
wird; und
eine Reaktanzschaltungseinrichtung, die der Lastschaltung zugeordnet ist, derart,
daß dann, wenn die Quellenspannung steigt und die Betriebsfrequenz der Leistungsschalteinrichtung
steigt, die Impedanz der Lastschaltung steigt, wodurch der Spitzenwert des in der
Gasentladungslampe fließenden Stroms im wesentlichen konstant eingestellt wird, und
zwar unabhängig von Schwankungen in der Amplitude der Quellenspannung.
19. Resonanzfreie elektronische Frequenzinverterschaltung, die elektrische Eingangsleistung
mit einer geringeren Frequenz empfängt und eine Lastschaltung mit mindestens einer
Gasentladungslampe mit Energie in einem Bereich höherer Frequenzen versorgt, umfassend:
eine erste und eine zweite Schalteinrichtung, die die Eingangsleistung empfangen und
die Lastschaltung mit Energie versorgen;
eine logische Schaltungseinrichtung zum Betreiben der ersten und zweiten Schalteinrichtung
unter Stromsteuerung, und zwar abhängig nur von dem jeweiligen in der ersten und der
zweiten Leistungsschalteinrichtung fließenden Stroms derart, daß die erste und die
zweite Schalteinrichtung in dem höheren Frequenzbereich arbeiten und die Frequenz
des Stromes in der Lastschaltung sich ändert, wie sich die Größe der Quellenspannung
ändert; und
eine Reaktanzschaltungseinrichtung, die der Lastschaltung zugeordnet ist, und zwar
derart, daß dann, wenn die Quellenspannung steigt und die Betriebsfrequenz der Leistungsschalteinrichtung
steigt, die Impedanz der Lastschaltung steigt, wodurch der in der Gasentladungslampe
fließende Spitzenstrom im wesentlichen konstant eingestellt werden kann, und zwar
unabhängig von Veränderungen in der Amplitude der Quellenspannung.