Information
-
Patent Grant
-
6247900
-
Patent Number
6,247,900
-
Date Filed
Tuesday, July 6, 199927 years ago
-
Date Issued
Tuesday, June 19, 200125 years ago
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Inventors
-
Original Assignees
-
Examiners
- Walberg; Teresa
- Fastovsky; L
Agents
-
CPC
-
US Classifications
Field of Search
US
- 062 160
- 062 2281
- 062 133
- 062 175
- 062 2285
- 062 209
- 062 2221
- 417 2222
- 417 295
- 417 63
- 318 687
- 310 135
-
International Classifications
-
Abstract
An accurate and low cost sensing apparatus for a swash or wobble plate compressor that requires no modifications in compressor design or operation, and which provides a repeatable and accurate measure of compressor speed and stroke. The apparatus includes a sensor module and a stroke sensing circuit. The compressor has an outer housing formed of aluminum or other non-magnetic material, as is customary in automotive air conditioning systems. The sensor module includes a magnetic field responsive sensor such as a Hall Effect or magneto-resistive (MR) sensor, and is attached to the periphery of the housing in proximity to a reciprocating ferrous element such as a bushing shoe on the swash or wobble plate assembly. The sensor produces a quasi-sinusoidal output voltage signal having a frequency proportional to compressor speed, and the stroke sensing circuit determines the compressor stroke by band-pass filtering, amplifying, and peak detecting the signal. The output of the stroke sensing circuit is substantially insensitive to noise, and the relationship between it and the compressor stroke is substantially linear, resulting in a reliable, accurate and inexpensive sensing apparatus.
Description
TECHNICAL FIELD
This invention relates to motor vehicle air conditioning systems including a variable displacement refrigerant compressor mechanically coupled to a rotary shaft of the vehicle engine, and more particularly to a non-intrusive sensing apparatus for determining operating parameters of the compressor.
BACKGROUND OF THE INVENTION
Variable displacement refrigerant compressors have been utilized in automotive air conditioning systems, with the displacement regulated in accordance with cooling demand via either a hydraulic control valve or solenoid control valve. In a typical arrangement, the compressor includes one or more pistons coupled to a tiltable wobble plate or swash plate, and the control valve adjusts a differential pressure acting on a wobble plate control mechanism to vary the wobble plate tilt angle, and hence the compressor displacement or stroke.
Various sensing devices have been proposed for determining the compressor speed and stroke, either for control or diagnostic purposes. In general, the sensing devices include a magnet mounted on a reciprocating element of the compressor, and a magnetic sensor mounted in or on the compressor housing in proximity to the reciprocating magnet. As the magnet reciprocates, the sensor develops a pulse or quasi-sinusoidal voltage waveform. The frequency of the waveform is typically independent of compressor stroke, and can be used as a measure of compressor speed, whereas the duty cycle of the waveform varies with the angle of the wobble or swash plate, and can be used as a measure of compressor stroke. Generally speaking, these devices are problematic because (1) they require changes in the mechanical design of the compressor, (2) the stroke measurement is non-linearly related to the actual stroke, and (3) the duty cycle measurements are subject to significant variation due to noise in the sensor output signal. As a result, a sensing system based on the known techniques is both costly and unreliable.
SUMMARY OF THE INVENTION
The present invention is directed to an improved low cost sensing apparatus for a swash or wobble plate compressor that requires no modifications in compressor design or operation, and which provides a repeatable and accurate measure of compressor stroke.
The apparatus of the invention comprises just two elements: a sensor module and a stroke sensing circuit. The compressor has an outer housing formed of aluminum or other non-magnetic material, as is customary in automotive air conditioning systems, and the sensor module includes a magnetic field responsive sensor such as a Hall Effect or magneto-resistive (MR) sensor. The sensor module is attached to the periphery of the housing in proximity to a reciprocating ferrous element such as a bushing shoe on the periphery of the swash or wobble plate assembly. Thus, no changes in the mechanical design of the compressor are required. The sensor produces a quasi-sinusoidal output voltage signal having a frequency proportional to compressor speed, and a stroke sensing circuit determines the compressor stroke by band pass filtering, amplifying, and peak detecting the signal. Additionally, the signal can be compensated for sensor non-linearities, if required. The output of the stroke sensing circuit is substantially insensitive to noise, and the relationship between it and the compressor stroke is substantially linear, resulting in a reliable, accurate and inexpensive sensing apparatus.
BRIEF DESCRIPTION OF THE DRAWINGS
FIG. 1
is a schematic diagram of an automotive air conditioning system including an electronically controlled variable displacement compressor, and a sensor module and stroke sensing circuit according to this invention.
FIG. 2
depicts the sensor module of FIG.
1
.
FIG. 3
is a block diagram of the stroke sensing circuit of FIG.
1
.
DESCRIPTION OF THE PREFERRED EMBODIMENT
Referring to the drawings, and particularly to
FIG. 1
, the reference numeral
10
generally designates an automotive air conditioning (AC) system including an electronically controlled multi-cylinder variable displacement refrigerant compressor
12
of the variable angle wobble plate type. The other elements of the system
10
are conventional, and include condenser
13
, orifice tube
14
, evaporator
16
and accumulator
18
arranged in order between the compressor discharge cavity
20
and suction cavity
22
.
A variable speed engine drive shaft (not shown) is coupled to a compressor pulley
58
via drive belt
60
, and the pulley
58
is coupled to a compressor drive shaft
56
by an electromagnetic clutch
62
. In certain applications, the clutch
62
may be eliminated, so long as another mechanism is provided for selectively de-coupling the compressor
12
from the remainder of the system
10
. A number of pistons
24
(only one of which is shown in
FIG. 1
) are mounted in the compressor crankcase
29
so as to be reciprocally driven by the shaft
56
through a tiltable wobble plate mechanism, generally designated by the reference numeral
25
. The shaft
56
rotatably drives a first tiltable plate
26
, and a second tiltable plate
27
that tilts with the first plate
26
, but which does not rotate, is coupled to the pistons
24
by the ball-joint connecting rods
28
. The rotary position of the second plate
27
is maintained by a number of guide rods
30
(only one of which is shown in FIG.
1
), each of which is coupled to the plate
27
by a brass bushing
32
(shown in phantom) which rides on a pair of ferrous shoes
33
, only one of which is shown in FIG.
1
. Thus, the brass bushings
32
and ferrous shoes
33
linearly reciprocate on the guide rods
30
, with the extent of their displacement being determined by the operating angle of the tiltable plates
26
,
27
. A magnetic proximity sensor module
34
mounted on an exterior surface of the crankcase housing
36
in line with a guide rod
30
senses the reciprocation of the steel shoes
33
, and provides an electrical output signal in accordance therewith to a stroke sensing circuit
54
on line
37
. A similar arrangement is used in a swash-plate type compressor, except that the shoes
33
are captured in trailing portions of the pistons
24
, and the sensor module
34
is located accordingly.
The stroke of the pistons
24
, and hence the displacement of the compressor
12
, is determined by the operating angle of the tiltable plates
26
,
27
. In the illustrated embodiment, the operating angle is regulated by pulse-width-modulating (PWM) a solenoid actuated control valve
40
to control the pressure in crankcase
29
. The control valve
40
includes two valves mechanically coupled to an armature
42
: a normally closed ball poppet valve
44
coupling the crankcase
29
to the compressor discharge cavity
20
and a normally open flat poppet valve
45
coupling the crankcase
29
to the compressor suction cavity
22
. When the solenoid coil
46
is de-energized, gas pressure in the crankcase
29
bleeds off into suction cavity
22
through poppet valve
45
; when coil
46
is energized, high pressure gas enters crankcase
29
from discharge cavity
20
through poppet valve
44
. In general, increasing the PWM duty cycle (i.e., the on/off energization ratio of solenoid coil
46
) increases the crankcase pressure to decrease the operating angle of the wobble plates
26
,
27
, and hence the compressor displacement, whereas decreasing the PWM duty cycle decreases the crankcase pressure, thereby increasing the operating angle of wobble plates
26
,
27
, and hence the compressor displacement.
The solenoid coil
46
and the compressor clutch
62
are both controlled by an electronic controller
48
in response to a number of inputs including an operator demand signal on line
50
, and one or more system signals such as the condenser outlet pressure signal (COPact) on line
51
and the evaporator outlet air temperature signal (EOATact) on line
52
. It will be understood that such signals are only exemplary. The controller
48
is additionally responsive to the output of stroke sensing circuit
54
, which provides an indication of the compressor displacement, or stoke, on line
56
. While the specific compressor control algorithm is not important to this invention, the development of an accurate and reliable stroke indication would enable a closed-loop control of stroke, for example.
As indicated above, the sensor module
34
may comprise any electromagnetic proximity sensor such as a Hall-Effect or MR sensor. In either event, the sensor is positioned on the exterior periphery of crankcase housing
36
just opposite a guide rod
30
, such that the distance between the sensor module
34
and the steel shoes
33
is at a minimum when the compressor
12
is operating at full stroke as shown in FIG.
1
. In this way, the peak amplitude of the sensor output signal will be at a maximum value at full stroke, linearly decreasing to a minimum value as the compressor
12
is de-stroked. In the illustrated embodiment, the sensor module
34
comprises a permanent magnet
70
and a low noise Hall-Effect sensor
72
potted in a plastic housing
74
that is glued or strapped to the crankcase housing
36
, as depicted in FIG.
2
. The sensor housing
74
is positioned with a fixture (not shown) at the time of its installation so that the magnet
70
is in line with the reciprocating travel path of the bushing shoes
33
, indicated by the arrow
76
, and its magnetic poles are oriented so that the magnetic flux lines pass through the aluminum housing
36
, the steel shoes
33
, and back through the housing
36
adjacent the magnet
70
. A portion of the return flux lines pass through the Hall Effect sensor
72
, and the signal produced on lines
37
is a measure of the relative proximity of the bushing shoes
33
to the magnet
70
. It is also possible to locate the magnet
70
directly atop the sensor
72
, depending on the magnetic field strength and the saturation characteristics of the sensor
72
.
In a preferred mechanization, the Hall Effect sensor may be an Allegro A3506LU, or equivalent, and the magnet may be a high strength rare earth magnet. Preferably, the strength of the magnet is maximized (within cost and package size constraints) so that the effect of stray magnetic flux from the electromagnetic clutch
62
does not significantly influence the signal developed on lines
37
. In some applications it is possible to eliminate the magnet
70
, and rely exclusively on the stray magnetic flux from the electromagnetic clutch
62
, but this requires compensation for variations in the strength of the magnetic flux due to variation in the current supplied to the clutch
62
. In clutch-less compressor designs, the strength of the magnet
70
may be reduced without significantly affecting the sensor performance. Finally, we have found that in certain mechanizations, there can be a compressor speed dependent variation in the relationship between the indicated and actual stroke. If this is the case, the controller
48
or stroke sensing circuit
54
can easily compensate for the non-linearity through the use of a look-up table or other well known technique.
FIG. 3
is a block diagram of the stroke sensing circuit
54
. The sensor output on line
37
is supplied as an input to a band-pass filter and gain circuit
80
which passes and amplifies those portions of the sensor output signal in a specified frequency range, such as 8 Hz to 200 Hz. The result in a clean quasi-sinusoidal signal having a frequency proportional to compressor speed CS and a peak amplitude proportional to compressor stroke. If desired, a squaring circuit
82
may be used to produce a corresponding square wave output on line
84
, the period of the square wave being inversely proportional to the compressor speed. To obtain the stroke information, the output of circuit
80
is supplied as input to peak detector circuit
86
, which in turn, supplies an input to sample-and-hold circuit
88
. A 5 Hz clock generator
90
produces a clocking signal on line
92
that periodically resets the peak detector circuit
86
and signals the sample-and-hold circuit
88
to hold the detected peak amplitude, thereby updating the stroke indication on line
56
. Thus, the peak detector circuit
86
operates to measure the peak amplitude of the filtered and amplified sensor signal over a predefined period, and the sample-and-hold circuit
88
updates the stroke indication at the end of each such period.
In summary, the present invention provides an improved compressor stroke sensing apparatus that is both less expensive and more reliable and accurate than known devices. While the invention has been described in reference to the illustrated embodiment, it is expected that various modifications in addition to those suggested above will occur to those skilled in the art. In this regard, it will be understood that the scope of this invention is not limited to the illustrated embodiment, and that sensors and circuits incorporating such modifications may fall within the scope of this invention, which is defined by the appended claims.
Claims
- 1. A variable stroke refrigerant compressor including a non-magnetic housing, a non-rotary plate tiltable to determine a stroke of said compressor, said non-rotary plate being supported within said housing and having a peripheral ferrous element that is constrained to reciprocating movement in proximity to said housing, the compressor further comprising:a sensor module including a magnetic field responsive sensor mounted on an exterior surface of said housing so as to detect a magnetic flux passing through said ferrous element and said housing, the sensor producing a quasi-sinusoidal voltage corresponding to the reciprocating movement of said ferrous element; and a stroke sensing circuit for filtering and amplifying said quasi-sinusoidal voltage, and for detecting peak values of the filtered and amplified voltage as an indication of the compressor stroke.
- 2. The variable stroke refrigerant compressor of claim 1, wherein said sensor module includes a permanent magnet for producing the magnetic flux passing through said ferrous element.
- 3. The variable stroke refrigerant compressor of claim 2, wherein said permanent magnet is disposed adjacent said sensor and in line with the reciprocating movement of said ferrous element.
- 4. The variable stroke refrigerant compressor of claim 1, wherein the stroke sensing circuit includes a band-pass filter for filtering said quasi-sinusoidal voltage.
- 5. The variable stroke refrigerant compressor of claim 1, wherein the stroke sensing circuit includes a peak detector circuit for detecting peak values of the filtered and amplified voltage, and a sample-and-hold circuit periodically triggered to hold an output of said peak detector circuit as an indication of the compressor stroke.
- 6. The variable stroke refrigerant compressor of claim 5, wherein the peak detector circuit is reset in synchronism with the triggering of said sample-and-hold circuit.
- 7. The variable stroke refrigerant compressor of claim 1, wherein the stroke sensing circuit further includes a circuit responsive to the filtered and amplified voltage for producing a square-wave signal having a period that is inversely proportional to a rotary speed of said compressor.
- 8. The variable stroke refrigerant compressor of claim 1, wherein the compressor includes an electromagnetic clutch, and a magnetic field of the clutch produces the magnetic flux passing through said ferrous element.
US Referenced Citations (21)