Cylinder-piston unit and method of detecting continuously the reciprocal position between cylinder and piston of such unit
10060453 ยท 2018-08-28
Assignee
Inventors
Cpc classification
F15B15/2846
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G01D5/34792
PHYSICS
H03M1/287
ELECTRICITY
F15B15/2876
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A cylinder-piston unit including: at least one cylinder including a tubular body (2); at least one piston (5) liable with a respective rod (5a), said piston (5) and said rod (5a) being translatable longitudinally in said tubular body (2) of said cylinder, at least one reference codification (C) extending for at least a section (dC) on the surface of said rod (5a), along the longitudinal axis of the same; at least detecting means (7), movable anchorable to said tubular body (2), faced, in use, towards said rod (5a) and suitable to detect said at least one reference codification (C) and to emit at the output at least a corresponding output electrical signal (s7), at least a reference zone (7c) of amplitude (d7c) delimited from said detecting means (7), said at least one reference codification (C) being detectable in correspondence to said at least one detection zone (7c); said at least one reference codification (C) including at least one plurality of adjacent sectors ( . . . , Si1, Si, Si+1, . . . ) extending along said longitudinal axis of said rod (5a), each of them for a section (dSi) of equal length; each sector (Si) includes a plurality of optical contrast zones (si1, si2, si3), each of them extending along said longitudinal axis of said rod (5a) for a respective section of extension (dsi1, dsi2, dsi3) such as the sum of the extensions of said sections of extensions (dsi1+dsi2 . . . ), in each sector (Si) is lower or equal to said amplitude (d7c) of said detecting zone (7c); said optical contrast zones (si1, si2, si3) being arranged in each sector (Si) according to the same sequence; and wherein in each sector (Si) at least one optical contrast zone (si1, si2, si3) shows said at least one respective section of extension (ds1, ds2, ds3) of different length compared to the length of the same section of extension in the other sectors (Si2, Si1, Si+1, Si+2, . . . ), therefore each sector (Si) remains univocally definable from the length of said at least one section of extension (dsi1, dsi2, dsi3) of said optical contrast zones (si1, si2, si3) in it included.
Claims
1. A cylinder-piston unit including: at least one cylinder including a tubular body; at least one piston liable with a respective rod, said piston and said rod being translatable longitudinally in said tubular body of said cylinder, at least one reference codification (C) extending for at least a section (dC) on a surface of said rod, along a longitudinal axis of said rod; at least one detector, which is movable and anchorable to said tubular body, said one detector is faced, in use, towards said rod and is configured to detect said at least one reference codification (C) and to emit at an output at least one corresponding output electrical signal, at least one reference zone of amplitude (d7c) delimited from said at least one detector, and said at least one reference codification (C) being detectable in correspondence to at least one detection zone (7c); wherein said at least one reference codification (C) includes at least one plurality of adjacent sectors ( . . . , Si1, Si, Si+1, . . . ) extending along said longitudinal axis of said rod, each of the plurality of adjacent sectors is for a section (dSi) of equal length; each sector (Si) includes a plurality of optical contrast zones (si1, si2, si3), each of the plurality of optical contrast zones extending along said longitudinal axis of said rod for a respective section of extension (dsi1, dsi2, dsi3) such that the sum of the extensions of said sections of extensions (dsi1+dsi2 . . . ), in each sector (Si) is lower or equal to said amplitude (d7c) of said reference zone (7c); said optical contrast zones (si1, si2, si3) are arranged in each sector (Si) according to a same sequence; and wherein in each sector (Si), at least one said optical contrast zone (si1, si2, si3) shows said at least one respective section of extension (ds1, ds2, ds3) of a different length compared to a respective length of a same section of extension in other sectors (Si2, Si1, Si+1, Si+2, . . . ), whereby each sector (Si) remains univocally definable from the length of said at least one section of extension (dsi1, dsi2, dsi3) of said optical contrast zones (si1, si2, si3) in said sector (Si).
2. A cylinder-piston unit according to claim 1, wherein said at least one detector includes at least one emitter of light radiations (RL) and at least one sensor of said light radiations (RL) disposed along an axis parallel to the longitudinal axis of said rod.
3. A cylinder-piston unit according claim 1, including a data control and elaboration unit of said at least one output signal, said data control and elaboration unit being electrically connected to said detector.
4. A cylinder-piston unit according to claim 2, including a regulator of light intensity suppliable from said at least one emitter of light radiations (RL), said regulator being electrically connected to a control and elaboration unit.
5. A cylinder-piston unit according to claim 1, wherein said at least one detector is movable and is anchorable to said tubular body, is provided receivable in at least one through receiving seat in said cylinder provided.
6. A cylinder-piston unit according to claim 1, including at least one disc body which is movable and anchorable to said cylinder and is provided with at least a through receiving seat configured to accommodate said at least one detector.
7. A method of continuous detection of a reciprocal position between a cylinder and a piston of a cylinder-piston unit, said method including phases of: providing a cylinder-piston unit according to claim 1; activating said at least one detector (phase 100); elaborating said at least one output signal in output to said detector (phase 200); emitting, according to the elaboration (phase 200), of an index (P) correlated to the reciprocal position in that moment assumed between said cylinder and said piston; wherein said elaboration phase of said at least one signal includes a measurement (phase 220), on said at least one output signal, of the length of said at least one section of extension (ds1, ds2, ds3) of said optical contrast zone/s (si1, si2, si3), that become completely represented in said signal.
8. A method according the claim 7, wherein said elaboration phase (phase 220) includes a phase of defining a position of rising and/or falling edges (si1a, si1b, si2a, si2b) of said signal from said detector.
9. A method according to claim 7, wherein said elaboration phase (phase 220) includes a defining phase of said sector (Si) of said reference codification (C) starting from an amplitude of said at least one section (ds1, ds2, ds3) of said optical contrast zone (si1, si2, si3) completely represented in said signal.
10. A method according to claim 8, wherein said reciprocal position between said cylinder and said piston of said cylinder-piston unit is correlated to said sector (Si) of said reference codification (C) and to said rising and/or falling edges (si1a, si2a) of said at least one section (dsi1, dsi2) of said optical contrast zone (si1, si2) completely represented in said signal.
11. A method according to claim 7, wherein the fact that said index (P) correlated with said reciprocal position between said cylinder and said piston depends: from a rising and falling edges (si1a, si1b, si2a, si2b) position of said signal detected from said detector; from said sector of said optical contrast zone/s, that result or results completely represented in said signal; from possible interpolation factors (FI) of said signal; from a resolution (R) of said detector; from a zoom factor (FZ) of said detector according to a formula:
Plt=((Si(d7CFI))+si1a)(R/(FZFI)).
12. A method according to claim 7, wherein said elaboration phase (phase 200) of said at least one output signal includes a pre-elaboration phase (phase 210) in which said signal is classified through the use of at least one threshold value (SH, SL)(phase 213).
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Further aspects and advantages of the present invention will appear better from the following detailed description of an example of it of manufacture, currently preferred, illustrated only as example and not limited in the unite drawings, in which:
(2) the
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(12) The
DESCRIPTION OF PREFERRED EMBODIMENTS
(13) In the united drawings, equal parts or components or similar have been identified with the same reference numbers.
(14) With reference now to the Figures from 1a to 1d, it will be noted as a cylinder-piston unit according to the present invention be generally indicated with the reference number 1 and it include a cylinder, typically composed to a tubular body 2, of section preferably circular, closed in correspondence of its extremities from respective head walls 3 and 4. In the tubular body 2 a piston 5 is mounted translatable along its longitudinal axis, connected to a respective rod 5a. The rod 5a exits from the cylinder, in case of a single effect piston (not illustrated in the drawings), trough a respective passing aperture, obtained, in one of the head walls 3 or 4 and, in case of a cylinder-piston double effect unit, through passing apertures 3a and 4a provided, respectively, in the head walls 3 and 4.
(15) On the rod 5a, a reference codification C is obtained, which is achieved, for example, through laser marking of the rod's surface and which extends all around the rod itself and in the longitudinal direction for a predefined section dC, for example equal to 24 cm.
(16) More specific, with reference to
(17) Each sector Si includes, in turn, two ore more different optical contrast's zones (si1, si2, si3, . . . with i=1, . . . N), each of them is embellished (marked) or not such as, in use, it is reflecting possible light radiations on it incident in different way respect to the other optical contrast zones included into the same sector Si.
(18) Each sector Si can be then interested to high, medium, low contrast zones or to reflective zones (see in particular the
(19) With reference instead to the
(20) The optical contrast zones (si1, si2, si3, . . . ) of the reference codification C according to the present invention extends, inside a respective sector Si, for a respective section of extension (ds1, ds2, ds3, . . . ). As you will observe, at least one of the optical contrast zones (si1, si2 and si3) varies, from a sector to the other, its own extension along the axis of the rod 5a. In the specific case of the
(21) The cylinder-piston unit according to the present invention includes detecting means 7 intended to detect the reference codification C during the travel of the piston 5 inside the cylinder 2. Such detecting means are considered, according to a first variant of the present invention, accommodated in a through receiving seat 6 (
(22) According to a second variant of the present invention, with reference to the
(23) For example, in the illustrated case in
(24) In the cylinder-piston unit according to the second example of realization of the present invention, there are expected also gaskets elements 12 and 13 between, respectively, the head wall 3 of the cylinder 2 and the disc body 8 and between the disc body 8 and the rod 5a of the piston. Such gasket elements 12 and 13 prevent the dirt, in the working zone of the cylinder-piston unit, to penetrate in the disc body 8 and they contribute then to maintain clean the zone of data detection of the detection's means.
(25) The detection's means 7 of the cylinder-piston unit according to the present invention include at least a emitter means 7a of light radiation RL, for example including one or more LED (sketched in the
(26) The detecting means 7 of the cylinder-piston unit take advantage of, as the sensor's means of the technical note, the difference in the reflection of the light radiations RL that hit the rod 5a in correspondence of the reference codification C. With reference to
(27) Such signal s7 shows a major amplitude (roughly next to the supply voltage Vcc of the detecting means) when, in correspondence of the zone or region of detecting 7c of the detecting means 7, an optical contrast unmarked zone si2 occurs of a section of reference codification C. When, on the other hand, in the detecting region 7c a first marked zone si1 occurs of the reference codification C, the signal s7 shows lower amplitude.
(28) The signal s7 then, see always
(29) Advantageously, in each sector Si of the reference codification C, each optical contrast zone si1, si2, si3, ecc. extends for a respective section of extension dsi1, dsi2, dsi3, ecc. along the rod 5a therefore the sum of such sections of extension is equal to the amplitude dS of each sector and lower or equal to the amplitude d7c of the detecting zone 7c of the detecting means 7. With such configuration, in every moment during the travel of the piston into the cylinder, the detecting means 7 detect, in correspondence of the respective detecting zone 7c, a section of reference codification C in which at least one of the optical contrast zones si1, si2, si3, . . . of a respective sector Si is completely included.
(30) Even more advantageously, at least one of the optical contrast zones si1, si2, si3, ecc. in a respective sector Si shows the respective section of extension dsi1, dsi2, dsi3, ecc. of different length respect to the length of the same section of extension in the other sectors of the codification C, therefore the i-th sector Si of the reference codification C results univocally identifiable from the length of at least a section of extension dsi1, dsi2, dsi3 ecc. of the optical contrast zones si1, si2, si3, ecc. in it included. As it is obvious, having each sector Si constant length dS, the variation of a section of extension dsi1 or dsi2 or dsi3 in the i-th sector, imply the variation of at least another section of extension dsi1 or dsi2 or dsi3 inside the same sector.
(31) According to a first example of manufacturing currently preferred of the cylinder-piston unit according the present invention (refer to the
(32) According to a variant of the present invention (
(33) As you will note, according to such variant, the amplitude d7c of the detecting zone 7c of the detecting means 7 is proportional to the number of sensor's means 7b provided and therefore greater than the one of the first example of manufacturing. In this case, then, the sectors' number Si, provided for the reference codification C, of total length dC, can be reduced and, consequently the realization costs of the respective reference codification C on the rod 5a of the mobile body can be also reduced.
(34) As you will easily understand, the choice of the reference codification C according to the first or second realization example of the present invention will depend on different factors, among which the dimensions of the seat provided for the detecting means 7, which limits the maximum amplitude d7c of the detecting zone of the sensors' means 7b along the longitudinal axis of the cylinder-piston unit. Another important factor is the facility (or not) of the reference codification's manufacturing.
(35) The cylinder-piston unit according to the present invention includes moreover a control and data elaboration unit 14 (
(36) According to the elaboration of the input received signal/s, typically of analogue type, the control and data elaboration unit 8 emits at its output an index P correlated to the reciprocal position between cylinder and piston of the cylinder-piston unit 1.
(37) The continuous detection of the reciprocal position between cylinder and piston of the cylinder-piston unit 1 according to the present invention, is than ever simple and reliable.
(38) Such detecting, refer to the
(39) Later, at the phase 200, the signal or the electrical signals s7 in output of the detecting means are elaborated and, in response to that elaboration, from the control unit and data elaboration 8, an index P correlated to the reciprocal position between cylinder and piston of the cylinder-piston unit is determined.
(40) If desired, such index can be sent to suitable means of input/output (phase 300) for this purpose provided in the cylinder-piston unit for the visualization and/or possible additional elaboration of the index P thus determined. The input/output means aren't illustrated in the drawings.
(41) With particular reference to the phase 200 of signal's elaboration (see
(42) In the phase 210 of pre-elaboration, the signal or the signals s7 are interpolated (phase 211), for example with a linear interpolation in case you want to increase the system's resolution. If desired, the contrast between maximum and minimum amplitude of the signal so interpolated is regulated (phase 212), if, for example, such contrast is lower than a certain value of threshold preconceived, for example equal to Vcc/2. As you will easily understand, with this contrast regulation, the signal s7 to elaborate, is made independent from factors, related for example to the worn of the rod 5a, which causes, with the passing time, at the output of the detecting means, the emission of a signal/signals s7 having an amplitude's difference always lower between different optical contrast zones (si1, si2, si3, ecc.).
(43) In addition or alternatively, as you will easily understand, the skilled person will consider, in this phase of the method according to the present invention, to elaborate the s7 signal with additional elaboration's techniques by means of, for example, geometrical distortion's corrections on the pixels of the corresponding CCD sensor, mapping of some Si sectors in the memory, for an easier and rapid identification of the sector of which the s7 signal is the reference, study of the minimal values of the s7 signal, introduction of offset for compensating possible marking non uniformities on the rod 5a, which reflects inevitably on the corresponding acquired s7 signal ecc.
(44) On the signal so pre-elaborated, indicated on the
(45) Such identification, refer to the
(46) If the signal s7 has an amplitude greater than SH, then it is identified as optical contrast's zone si2.
(47) If the signal s7 has an amplitude lower than SL, then it is identified as optical contrast's zone si1.
(48) If the signal s7 has an intermediate amplitude, it is classified as relative to a transition zone between si1 and si2.
(49) According to such classification, the signal s7, in output to the detecting means, is transformed in an electrical signal with steps, that presents vertical rising and falling edges, and indicated as the reference s7.
(50) Such signal s7 is further elaborated at the phase 220.
(51) The phase 220 considers the measurement, on the s7 signal, of the extension of the optical contrast zone/s si1, si2, si3, ecc, between those identified in the previous phase, that result/s completely represented in the signal s7, since, as above mentioned, the system's geometry is such that starting to their extension dsi1, dsi2, dsi3, ecc. it is possible to go back up univocally to the sector belonging to the zone/s in the reference codification C.
(52) In the particular case in which the reference codification C includes sectors Si in which only two optical contrast zones si1 and si2 are obtained, the extension of optical contrast zone/s dsi1, dsi2, completely represented in the signal s7 is determined at the phase 221, according of the distance's calculation between a rising edge and the next falling edge (respectively si2a and si2b, in case of si2) of the signal s7 or, vice versa, at the phase 222, according to the calculation of the distance between a falling edge an the next rising edge (respectively si1a and si1b, in case of si1) of the signal.
(53) Different procedures allow identifying the position of the rising and/or falling edges of the steps' signal s7. According to the
(54) If the initial portion of the signal s7 is referred, for example, to the optical contrast zone si1, the rising and/or falling edges of the signal s7 that will be determined will be those concerning to the adjacent optical contrast zone/s, and, in the specific case of the illustrated manufacturing examples, those concerning the optical contrast zone si2 (see
(55) Once the belonging sector of the codification C section is noted which is detected from the detecting means 7 it is possible to detect the index P correlated to the reciprocal position between cylinder and piston of the cylinder-piston unit, according to the resolution (R) of the sensor/s means 7b and the possible zoom factor (FZ) to it/them associated (phase 224).
(56) Such index P corresponds, in substance, to the distance to which, in that moment (instant t), the piston of the cylinder-piston unit is located, compared to its stand-off position, and it is given from the following formula:
Plt=(Si(d7CFI))+si1a)(R/(FZFI))
where: Si indicates the identified sector in correspondence to the detecting zone 7c of the detecting means, at the phase 223, D7c is the amplitude (expressed in pixels) of the detecting zone of the CCD sensor, Si1a is the position of the rising edge of the elaborated signal expressed in pixel; R is the resolution of the detecting means; Fz is the zoom factor; Fi is the interpolation factor.
Obviously, in the case of signal's interpolation as above described, d7c will be multiplied for the correspondent interpolation factor Fi, for example equal to 2, as the zoom factor Fz.
Example
(57) A 256 pixels CCD type sensor's means (in which each pixel has an extension equal to 63.5 um) and a zoom factor (correlated to the piston's rod's bending and to the morphology of the emitter/s 7a) for example equal to 2 are given, the amplitude d7c of the detecting zone of the device 7c is approximately equal to 63.5 um256 pixel=16 mm
(58) The amplitude dSi of each sector Si obtained on the cylinder-piston unit's rod is, then, at most equal to 16 mm/2=8 mm.
(59) Let's suppose that each sector Si is equipped of two optical contrast zones si1 and si2, the extension's sum dsi1 and dsi2 of such zones, in each sector Si, will be, according to the present invention, lower or equal to 8 mm, for example equal to 7.5 mm, such as it is possible to distinguish clearly, in correspondence of the detecting zone 7c, the passage from a zone to the other during the piston's travel into the cylinder 1.
(60) Let suppose that the reference codification C extends along a section of length dC equal to 240 mm on the rod of the cylinder-piston unit, the number of sectors Si of the codification C is equal to 240 mm/7.5 mm=32.
(61) The difference of extension between two corresponding zones si1 or si2, belonging to adjacent sectors, is for example equal to 0.1905 mm, actually corresponding to 6 CCD sensor's pixels.
(62) With a 256 pixels CCD type sensor's means, indeed, in which each pixel has an extension of 63.5 um and a zoom factor of 2, you have that 0.1905 mm=190.5 um/(63.5/2)=190.5/31.75=6 pixels. If, in addition, an interpolation factor of 2 is expected, the extension's difference between two corresponding zones si1 or si2, belonging to adjacent sectors would be equal to 6 pixels2=12 pixels.
(63) With a such configuration, the reference codification C is provided of 32 sectors, the first of each Si is interested from a zone s11 of extension equal to 1 mm, (the corresponding zone s12 having extension for example equal to 7.5 mm-1 mm=6.5 mm). The corresponding optical contrast zones s21, s31, s41, ecc. belonging to the respective sectors S2, S3, S4, ecc. will have extensions as increasing from sector to sector of 0.1905 mm, till having, in the last sector, S32 an extension equal to 1 mm+(0.1905 mm31)=7.096 mm.fwdarw.corresponding to approximately 14 mm detectable to the sensor's means 7b.
(64) With a such configuration, executing for example a linear interpolation of the acquired signal s7, with a Fi factor of 2, the reciprocal position between cylinder and piston in the cylinder-piston unit, in a given instant t, is expressed in the formula:
Plt=((Si(d7CFI))+si1a)(R/(FZFI))
that is
Plt [um]=((Si(2552))+si1a)(31.75/2)) [um]
(65) You will easily understand that, the method according to the present invention is executed continuously and therefore, little by little the piston travels inside the cylinder, moving along the cylinder compared to its stand-off position, the index Plt is constantly updated.
(66) The cylinder-piston unit and the method above mentioned are susceptible of numerous modifications and variants inside the limit of protection defined from the following claims.
(67) So for example, preliminary at the initial phase 100 of activation of the detecting means 7, a phase of calibration of the detecting means 7 and of the data control and elaboration unit 8 can be provided.
(68) Again, the contrast regulation of the signal 7 at the output of the detecting means 7 can be implemented from the data control and elaboration unit 14 through instructions executable from the data control and elaboration unit 14 or manually. In this second case the cylinder-piston unit according to the present invention includes suitable light intensity regulation means, in use, delivered by the emitters means 7a.
(69) In order to regulate the contrast signal s7 at the output of the detecting means 7 a manual action is possible or through instructions, executable from the data control and elaboration unit 8, on the direction of the radiation light RL incident on the rod 5a, or on the integration time of the pixels.
(70) In the end you will understand that, in case in which the reference codification C, comprises in each sector Si, three or more optical contrast zone (si1, si2, si3, si4), such codification C will be represented in each sector Si, through combination of couples or triplets of such optical contrast zones. In this way, at same length dC of the reference codification C along the piston's rod, the amplitude's differences dsi1, dsi2, dsi3, dsi4 of each zone, between a sector and another, could be more accentuated and therefore better detectable from the system.
(71) Couples or triplets of such zone allow, at same dimensions dS of each sector Si, a number of combinations such that the reference codification C can be manufactured of a greater length dC. In some applications, for example with cylinder-piston unit of big dimensions, this results very advantageously.
(72) In case of the reference codification C will be interested, in each sector, from three or more optical contrast zones (do particular reference to the