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III. APPLICATIONS OF FDS IN AUTOMOTIVE INDUSTRY

III. APPLICATIONS OF FDS IN AUTOMOTIVE INDUSTRY - раздел Образование, Automotive FDS resolution improvement by using the principle of rational approximation Figure 3 Shows Some Sensor Applications In Today’S Cars, In Which Some Of The...

Figure 3 shows some sensor applications in today’s cars, in which some of them are SAW sensors and different kinds of sensors variety working precisely in frequency domain. As automotive application, it is natural and evident that one of the most critical requirements to such sensors is the operating time, or speed of response, which is extremely important character for general operation speed of automobile’s onboard automatic control system. One of the examples are SAW torque sensors, as well as resistive strain gauges, measure the torque indirectly by detecting the strain or stress distribution generated by a torque acting on the shaft [14]. Fig. 4 shows a shaft with two mounted SAW torque sensors in its actual size.

 

Fig. 3. Sensors in nowadays cars.

 

 

 

 

 

Fig.4. SAW torque sensors mounted on a shaft

 

Wireless SAW pressure sensors are fabricated using a quartz diaphragm that bends under hydrostatic pressure. A reflective delay line is achieved by structuring one surface of the quartz diaphragm (see Fig. 5a). It can obtain a resolution of about 1% of the full range.

Figure 5 shows the physical principle of the pressure measurement in a car tire by a sensor and the typical time-domain pressure curve behavior.

Another way to process physical magnitudes trough electronics is the voltage to frequency conversion. Since most semiconductor pressure sensors [15] provide a voltage output, one must have a means of converting this voltage signal to a frequency that is proportional to the sensor output voltage.

Assuming the analog output voltage of the sensor is proportional to the applied pressure, the resultant frequency will be linearly related to the pressure being measured.

There are many different timing circuits that can perform voltage to frequency conversion. Most of the simple (relatively low number of components) circuits do not provide the accuracy or the stability needed for reliably encoding a signal quantity. Fortunately, in the market there are many voltage-to-frequency (V/F) converter IC’s commercially available that will satisfy this function.

 

 

 

 

Fig.5. a) Schematic drawing of a SAW pressure sensor; b) pressure measurement of a sensor in a car tire.

 

Also, it is essential to note that the capacity of information at the modulation voltage is 2πf0 times worse than at the modulation frequency, where f0 is the standard frequency value at normal operating conditions.

Another limitation of some V/F converters is the less than adequate switching transition times that affect the pulse or square-wave frequency signal.

The required switching speed will be determined by the hardware used to detect the switching edges. Some families of microcontrollers (see Fig.6) have input-capture functions that employ Schmitt trigger like inputs with hysteresis on the dedicated input pins.

In this case, slow rise and fall times will not cause an input capture pin to be in an indeterminate state during a transition. Thus, CMOS logic instability and significant timing errors will be prevented during slow transitions.

Since the output frequency of the sensor may be interfaced to other logic configurations, the main concern of the designer is to comply with a worst-case timing scenario [5].

For high-speed CMOS logic, the maximum rise and fall times are typically specified at several hundreds of nanoseconds. Thus, it is wise to speed up the switching edges at the output of the V/F converter. A single small-signal FET and a resistor are all that is required to obtain switching times below 100 ns.

The evaluation board shown in Fig. 6 is designed to transduce pressure, vacuum or differential pressure into a single-ended, ground referenced voltage that is then the input to a voltage-to-frequency converter. It nominally provides a 1 kHz output at zero pressure and 10 kHz at full scale pressure. Zero pressure calibration is made with a trimpot that is located on the lower half of the left side of the board; while the full scale output can be calibrated via another trimpot just above the offset adjust.

 

 

 

Fig.6 DEVB160 frequency output sensor EVB.

 

– Конец работы –

Эта тема принадлежит разделу:

Automotive FDS resolution improvement by using the principle of rational approximation

O Yu Sergiyenko Member IEEE D Hern aacute ndez B V V Tyrsa P L A Rosas Mendez W Hernandez Member IEEE J I Nieto Hipolito O... Abstract In this paper a novel method of frequency counting of signals coming from automotive sensors is presented...

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Все темы данного раздела:

I. INTRODUCTION
In today’s cars, one of the most complex parts is the mechatronics, in which sensor networks play a very important role. Most of the sensors embedded in cars are frequency domain sensors (FDS) and,

II. Automotive sensors in frequency domain
This paper is focused on self resonant FDS. They are also called auto resonant or resonant sensors and the main advantages of resonant sensors over other kind of sensors are their stability, high r

IV. PRINCIPLE OF RATIONAL APPROXIMATION
In the principle of rotational approximation, a desired frequency is measured by comparing it with a standard frequency. However, not by simple pulses count in a time sample, but using the special

V. PROTOTYPE
  Here, a circuit was built in order to test the method presented in this paper. Two frequency generators were used to generate f0 and fx. The prot

APPLICATIONS
The above theoretical method for fast frequency count is applicable for resolution improvement of automotive FDS. We can state it for the next reason. Currently, the most of FDS [14, 23, 39] are us

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