Heater Meander
20220299461 · 2022-09-22
Inventors
Cpc classification
G01N27/16
PHYSICS
International classification
Abstract
A heat meander is disclosed. In an embodiment a heater meander includes a meander structure, wherein central meander lines of the meander structure are thicker than meander lines in an outer area of the meander structure.
Claims
1. A heater meander comprising: a meander structure, wherein central meander lines of the meander structure are thicker than meander lines in an outer area of the meander structure.
2. The heater meander according to claim 1, wherein the meander structure is configured to obtain a homogeneous temperature field in a sensing area.
3. The heater meander according to claim 1, wherein the heater meander is a resistor heater
4. A heater meander comprising: a meander structure, wherein meander lines form a pattern of alternating thin and thick meander lines.
5. The heater meander according to claim 4, wherein the meander structure is configured to obtain a homogeneous temperature field in a sensing area.
6. The heater meander according to claim 4, wherein the heater meander is a resistor heater.
7. A gas concentration sensor comprising: a heater meander comprising a meander structure, wherein central meander lines of the meander structure are thicker than meander lines in an outer area of a meander structure, or wherein the meander lines form a pattern of alternating thin and thick meander lines.
8. The gas concentration sensor according to claim 7, further comprising a thermistor arranged adjacent to a sensing area of the heater meander.
9. The gas concentration sensor according to claim 8, wherein the gas concentration sensor comprises two sensor units, wherein a first sensor unit comprises a first thermistor and a first heater meander and a second sensor unit comprises a second thermistor and a second heater meander.
10. The gas concentration sensor according to claim 9, wherein the first thermistor is covered with a catalyst and the second thermistor is covered with a dummy catalyst.
11. The gas concentration sensor according to claim 10, wherein one of the two sensor units comprises the heater meander, wherein the central meander lines of the meander structure are thicker than the meander lines in the outer area of the meander structure, wherein the other one of the two sensor units comprises the heater meander, and wherein the meander lines form the pattern of alternating thin and thick meander lines.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0030] In the following the invention is exemplarily described by using figures. The invention is not limited to the described examples.
[0031]
[0032]
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[0034]
[0035]
[0036]
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DETAILED DESCRIPTION OF ILLUSTRATIVE EMBODIMENTS
[0039] In the
[0040] The sensing area is the area at a surface of the meander structure next to which a thermistor for gas temperature measurement is arranged.
[0041] The thermistor may be the thermistor of a measuring sensor unit or a reference sensor unit. The functionality of the two units are described later. In general, thermistors in reference sensor units are smaller to obtain a temperature that is as uniform as possible. Thermistors in measuring sensor units are larger to improve their detection properties.
[0042] All temperatures in the figures are given in Kelvin (K). The maximum and minimum temperatures are shown. Different types of shading 2a and 2b symbolise different temperatures. A finer shaded area 2a symbolises an area of higher temperature and the area 2b is an area of lower temperature.
[0043] In a meander structure shown in
[0044] Thus, the gradient of a temperature of a gas in the sensing area is large. In the simulated example of a temperature field of the sensing area shown in
[0045] In the embodiment shown in
[0046] In the embodiment shown in
[0047] In
[0048] In the embodiments shown in
[0049] In
[0050] Furthermore, a combination of both described effects, thicker meander lines in a central area 2 and alternating pattern of meander lines 3a and 3b, is possible to further decrease the temperature gradient in the sensing area.
[0051] In particular, embodiments of meander structures with the meander patters shown in the
[0052]
[0053]
[0054] In both embodiments which are shown in
[0055] In an embodiment, a gas concentration sensor comprises a measuring sensor unit with a first resistor heater meander. A catalyst in the measuring sensor unit accelerates a reaction, e.g. combustion, between e.g. CO gas to be detected and e.g. 02 gas as a reaction gas in the atmosphere to generate CO.sub.2 gas during operation of the sensor. Reaction heat generated at this time is conducted to a first thermistor adjacent to a sensing area of the first resistor heater meander in the measuring sensor unit to change the resistance value of the first thermistor.
[0056] In the same embodiment, the gas concentration sensor comprises a reference sensor unit with a second resistor heater meander. A dummy catalyst in the reference sensor unit does not accelerate the combustion of the gas to be detected even when being heated to a predetermined temperature by the second resistor heater. Thus, the resistance value of the second thermistor reflects only heating by the second resistor heater meander. The concentration of the gas to be detected can be calculated from the different signals of the measuring sensor unit and the reference sensor unit.
[0057] In a further embodiment, a gas concentration sensor comprises a first sensor part that is configured to detect a concentration of a mixture of a first gas and a second gas; and the gas concentration sensor comprises a second sensor part having a higher detection sensitivity with respect to the second gas than with respect to the first gas, and a signal processing circuit that subtracts a concentration of the second gas detected by the second sensor part from a mixture concentration detected by the first sensor part to derive a concentration of the first gas.
[0058] In an embodiment, the first and second gases are combustible gases, and the first sensor part is a contact combustion type sensor.
[0059] In an embodiment, the second sensor part is a heat conduction type sensor. This configuration is advantageous, if the heat conductivity of the first gas is e.g. closer to the heat conductivity of a measuring atmosphere than the heat conductivity of the second gas.
[0060] In the following an embodiment of a gas concentration sensor comprising a resistor heater meander is exemplarily described. The invention is not limited to the described example.
[0061] The exemplary gas concentration sensor 10 shown in
[0062] The concentration of the second gas detected by the second sensor part S2 can be subtracted from the concentration of the mixture concentration detected by the first sensor part S1 by the signal processing circuit 10, so that it is possible to cancel the influence of the second gas which may be a miscellaneous gas mixture to thereby work out a correct value of concentration of the first gas to be detected.
[0063] In an example the first and second gases may be combustible gases and the first sensor part S1 is a contact combustion type sensor, and the first gas is closer in heat conductivity to the measuring environmental atmosphere than the second gas and the second sensor part S2 is a heat conduction type sensor. With this configuration, it is possible to reduce measurement errors caused due to the presence of a second gas which may be a mixture of miscellaneous combustible gases. The first gas is, e.g., CO gas, and the second gas is, e.g., ethanol, acetic acid, or an organic deodorant.
[0064] It is preferable in this embodiment that the first sensor part S1 includes a measuring sensor unit 30 comprising a first resistor heater meander MH1, a first thermistor Rd1 and a catalyst CT disposed near the first thermistor Rd1 and further includes aa reference sensor unit 40 comprising a second resistor heater meander MH2, a second thermistor Rd2, which does not comprise a catalyst or which comprises only a dummy catalyst DCT near the second thermistor Rd2. With this configuration, it is possible to accelerate combustion of the gas to be detected in the measuring sensor unit 30 by the catalyst CT.
[0065] In this embodiment, the second sensor part S2 may include a further measuring sensor unit comprising a third resistor heater meander MH3. The reference sensor unit 40 may be shared between the first and the second sensor parts S1 and S2.
[0066] The first sensor part S1 may output a first detection signal and the second sensor part S2 may output a second detection signal. With this configuration, the number of required elements can be reduced. The second sensor part 40 may be either connected to the first sensor part S1 or the second sensor part S2 by a switch sw1.
[0067] With this configuration, it is possible to reduce measurement errors due to aging of the thermistor, a change in environmental temperature, or the presence of non-combustible second gas.
[0068] Alternatively, the gas concentration sensor may have a configuration in which the first sensor part S1 includes two sensor units and the second sensor part S2 includes two sensor units, a reference sensor unit and a measuring sensor unit each.
[0069] With this configuration, measurement by the first sensor part S1 and measurement by the second sensor part S2 may be executed synchronously (at the same time) or asynchronously (at different times).
[0070] With this configuration, it is also possible to reduce measurement error due to aging of the thermistor, a change in environmental temperature, or presence of non-combustible miscellaneous gases.
[0071] The signal processing circuit 20 preferably determines the type of the second gas based on the detection signal of the first sensor part S1 during operation. In this case, the signal processing circuit 20 can determine the type of the second gas from the rising waveform of the first detection signal. Further, the signal processing circuit 20 may determine the presence/absence of the first gas according to the inclination of the first detection signal.
[0072] The signal processing circuit 20 may calculate the concentration of the first gas in a predetermined detection cycle, and the detection cycle may be reduced when the concentration of the second gas detected by the second sensor part S2 exceeds a predetermined value.
[0073] The signal processing circuit preferably corrects the difference between detection sensitivity with respect to the second gas by the first sensor part S1 and detection sensitivity with respect to the second gas by the second sensor part S2. Thus, it is possible to accurately cancel the influence of the second gas.
[0074] While this invention has been described with reference to illustrative embodiments, this description is not intended to be construed in a limiting sense. Various modifications and combinations of the illustrative embodiments, as well as other embodiments of the invention, will be apparent to persons skilled in the art upon reference to the description. It is therefore intended that the appended claims encompass any such modifications or embodiments.