VOLTAGE CONVERTER, ACTUATOR AND GAS BURNER
20190056146 ยท 2019-02-21
Inventors
Cpc classification
F23N1/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24H9/2035
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23N2235/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02M3/156
ELECTRICITY
International classification
F24H9/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23N1/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An electrical step-down converter comprises a circuit input and a circuit output, which have a common reference potential, furthermore a flow-control valve having an inlet and an outlet, the inlet being connected to the circuit input; a coil, which is connected between the outlet of the flow-control valve and the circuit output; a diode, which is inserted in the forward direction from the reference potential to the outlet of the flow-control valve; an output capacitor between the circuit output and the reference potential; and a control device for periodically opening and closing the flow-control valve. A Zener diode is inserted between the anode of the diode and the reference potential with a forward direction to the reference potential and a resistor is provided in parallel to the diode.
Claims
1-6. (canceled)
7. An electrical step-down converter having a circuit input and a circuit output, which have a common reference potential, the step-down converter comprising: a flow-control valve having an inlet and an outlet, the inlet being connected to the circuit input; a coil which is connected between the outlet of the flow-control valve and the circuit output; a diode which is inserted in a forward direction from the reference potential to the outlet of the flow-control valve; an output capacitor between the circuit output and the reference potential; a control device for opening and closing the flow-control valve periodically; a Zener diode with a forward direction to the reference potential inserted between an anode of the diode and the reference potential); and a resistor in parallel to the diode.
8. The step-down converter as recited in claim 7, further comprising: an input capacitor provided between the circuit input and the reference potential.
9. A current-controlled actuator, comprising: a moving coil; and a step-down converter having a circuit input and a circuit output, which have a common reference potential, the step-down converter including: a flow-control valve having an inlet and an outlet, the inlet being connected to the circuit input, a coil which is connected between the outlet of the flow-control valve and the circuit output, a diode which is inserted in a forward direction from the reference potential to the outlet of the flow-control valve, an output capacitor between the circuit output and the reference potential, a control device for opening and closing the flow-control valve periodically, a Zener diode with a forward direction to the reference potential inserted between an anode of the diode and the reference potential, and a resistor in parallel to the diode; wherein the moving coil is electrically connected to the circuit output such that an actuating position controlled by the actuator depends on a flow of current through the moving coil effected by the step-down converter.
10. The actuator s recited in claim 9, wherein the control device of the step-down converter controls the flow-control valve using a pulse-modulated signal with a pulse-duty factor in such a way that an actuating position of the moving coil is controlled via the pulse-duty factor.
11. A gas burner, comprising: a controllable gas valve; and as a current-controlled actuator for controlling the gas valve, the actuator including: a moving coil, and a step-down converter having a circuit input and a circuit output, which have a common reference potential, the step-down converter including: a flow-control valve having an inlet and an outlet, the inlet being connected to the circuit input, a coil which is connected between the outlet of the flow-control valve and the circuit output, a diode which is inserted in a forward direction from the reference potential to the outlet of the flow-control valve, an output capacitor between the circuit output and the reference potential, a control device for opening and closing the flow-control valve periodically, a Zener diode with a forward direction to the reference potential inserted between an anode of the diode and the reference potential, and a resistor in parallel to the diode; wherein the moving coil is electrically connected to the circuit output such that an actuating position controlled by the actuator depends on a flow of current through the moving coil effected by the step-down converter wherein the actuator acting on the gas valve in such a way that a degree of opening of the gas valve depends on the flow of current effected by the step-down converter.
12. The gas burner as recited in claim 11, further comprising: a ventilator for generating a volume flow of air in the area of a gas outlet of the gas valve, the ventilator being controllable by the same control device.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0015] The present invention is described in greater detail with reference to the figures.
[0016]
[0017]
DETAILED DESCRIPTION OF EXAMPLE EMBODIMENTS
[0018]
[0019] Gas valve 120 is connected to an actuator 130 in order to open or close gas valve 120. Actuator 130 comprises a moving coil 135, also called a plunger coil, and a control device that is integrated into control device 110 in the specific embodiment shown. Moving coil 135 comprises a permanent magnet 140 having a recess and a moving coil carrier 145, which is designed to plunge into the recess. An electrical coil is attached on moving coil carrier 145, which generates a magnetic field when current is running through it, which magnetic field pulls the moving coil carrier 145 in the magnetic field of permanent magnet 140 into the recess or pulls it out of the recess. This principle is conventional in the technical field of loudspeakers. An elastic element, for example a diaphragm, provides a suitable return force onto moving coil carrier 145 so that moving coil carrier 145 is returned into a normal position when current no longer flows through the coil. Moving coil carrier 145 is preferably connected in such a way to gas valve 120 that the position of moving coil carrier 145 in the recess is proportional to a degree of opening of gas valve 120.
[0020] In order to control the combustion of flame 125, control device 110 must usually be designed to control both ventilator 105 as well as actuator 130 using moving coil 135. A change of the position of actuator 130 usually occurs relatively slowly.
[0021]
[0022] A control device 240, which may be integrated with control device 110 from
[0023] In the specific embodiment shown here, the anode of diode 270 is connected via a Zener diode 275 to reference potential 215, the cathode of Zener diode 275 pointing toward reference potential 215. A capacitor 280 is preferably connected in parallel to Zener diode 275. A resistor 285 is also preferably provided in parallel to diode 270.
[0024] Control device 240 is designed to open and close flow-control valve 245 periodically, for the purpose of which a pulse-width modulated (PWM) signal having a predetermined pulse-duty factor may be used. The pulse-duty factor may usually be changed in a range between 0% and 100%. A period duration of the PWM signal is markedly shorter than the period of an adjustment of the pulse-duty factor.
[0025] The voltage on consumer 225 is determined in a usual step-down converter 200 as the product of an efficiency factor, a voltage of voltage source 220 and the pulse-duty factor D. Consumer 225 has a predetermined resistive (Ohmic) resistance so that a current flows through consumer 225 that is determined as the quotient of the voltage on circuit output 210 of step-down converter 200 and resistor 285. Here it must be taken into consideration that the efficiency factor at a constant resistance of consumer 225 is a function of the voltage on circuit input 205 and pulse-duty factor D.
[0026] In the circuit shown above, the output voltage is reduced by an absolute value K, which is determined by the Zener voltage of Zener diode 275.
[0027] Capacitor 280 above Zener diode 275 is used for damping in order to improve a stable behavior of the regulation and thus of the voltage on consumer 225. Resistor 285 polarizes diode 270.
[0028] The step-down converter 200 shown is able to ensure a precise and repeatable control of the voltage on consumer 225 or of the current flowing through it by a suitable choice of a pulse-duty factor D of the PWM signal of control device 240. Control device 240 may advantageously also be used to control another parameter such as in the example from