WO1995028624A1 - Stabilized pressure sensor - Google Patents

Stabilized pressure sensor Download PDF

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Publication number
WO1995028624A1
WO1995028624A1 PCT/SE1995/000425 SE9500425W WO9528624A1 WO 1995028624 A1 WO1995028624 A1 WO 1995028624A1 SE 9500425 W SE9500425 W SE 9500425W WO 9528624 A1 WO9528624 A1 WO 9528624A1
Authority
WO
WIPO (PCT)
Prior art keywords
diaphragm
house part
attached
electrically conductive
conductive layer
Prior art date
Application number
PCT/SE1995/000425
Other languages
English (en)
French (fr)
Inventor
Nils Gunno Hallberg
Staffan Jonsson
Original Assignee
Cecap Ab
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Cecap Ab filed Critical Cecap Ab
Priority to DE69521890T priority Critical patent/DE69521890T2/de
Priority to US08/722,012 priority patent/US5920015A/en
Priority to EP95916908A priority patent/EP0755507B1/en
Priority to JP52691495A priority patent/JP3757984B2/ja
Publication of WO1995028624A1 publication Critical patent/WO1995028624A1/en

Links

Classifications

    • GPHYSICS
    • G01MEASURING; TESTING
    • G01LMEASURING FORCE, STRESS, TORQUE, WORK, MECHANICAL POWER, MECHANICAL EFFICIENCY, OR FLUID PRESSURE
    • G01L9/00Measuring steady of quasi-steady pressure of fluid or fluent solid material by electric or magnetic pressure-sensitive elements; Transmitting or indicating the displacement of mechanical pressure-sensitive elements, used to measure the steady or quasi-steady pressure of a fluid or fluent solid material, by electric or magnetic means
    • G01L9/0041Transmitting or indicating the displacement of flexible diaphragms
    • G01L9/0072Transmitting or indicating the displacement of flexible diaphragms using variations in capacitance
    • G01L9/0075Transmitting or indicating the displacement of flexible diaphragms using variations in capacitance using a ceramic diaphragm, e.g. alumina, fused quartz, glass

Definitions

  • the present invention relates to pressure transducers or sensors for measurement of pressures derived from fluids of various kinds, both gases and liquids, and methods of producing such pressure transducers or sensors.
  • Sensor elements for pressure sensors based on ceramics and constructed as dilatation or strain sensors or capacitive sensors can conventionally comprise various ceramic materials. Often, then, ceramics is used based on aluminum oxide but also glass ceramics is used. There are some problems associated with the use of such sensors and some of them will be discussed hereinafter with reference to Fig. 1 and Figs. 2a - 2d.
  • the sensor element comprises a thick house part 1 , in the shape of a plate 3 comprising an annular projection or platform 5 located at the circumference thereof on one side.
  • a thin plate 7 At the annular projection a thin plate 7, a pressure diaphragm, is attached, which thus has a considerably less thickness than the house part 1.
  • the house part 3 and the diaphragm 7 carry on their interior, opposite surfaces at the central portions thereof electrically conducting areas 9 and 11 respectively in the shape of thin layers, which normally have the same configuration and are located opposite each other and at a small distance of each other.
  • the capacitor When the distance between the opposite surfaces on the two conductive areas 9, 11 in the capacitor formed thereof is varied, the capacitor will have a varying capacitance, which is readily detected by means of suitable electronic circuits.
  • the capacitance or some function derived therefrom in a simple way for instance the inverted value of the capacitance, should be a linear function of for example the distance of the plates in the capacitor formed.
  • the sensor element can then be used for pressure measurement and then, in the corresponding way, the electronically detected capacitance or some other quantity derived in a simple way should be proportional to the pressure acting on the diaphragm 7.
  • deviations from the linear behaviour are always present and will be described hereinafter.
  • the presupposition that a linear function exists or should exist is based on the theory of the capacitance between two flat electrically conducting plates which are parallel to each other.
  • the movable diaphragm 7 and hereby the electrode plate or the electrode area 11, which is located thereon will have some curved profile, when the diaphragm is exposed to an exterior pressure deviating from the pressure on the chamber formed between the house 3 and the diaphragm 7.
  • the electrodes 9, 11 in the plate capacitor formed are thus then not flat and not parallel to each other. This deflection effect can be calculated numerically and has generally a small importance in a complete or finished pressure sensor having the sensor element attached in a house.
  • Another basic condition for the presupposition of a linear dependence of an output signal and the pressure acting on the diaphragm is that the magnitude of the deviation or deflection of the diaphragm is proportional to the applied pressure force. It is valid for small deviations from the equilibrium position of the diaphragm, where the equilibrium or rest position can be the state of the diaphragm for equally large pressures on the two sides thereof. However, for larger deflections from the rest position the deflection will not follow the pressure force proportionally but is less than what would be obtained in an ideal proportional case.
  • the deflection of the diaphragm can be calculated in different ways, such as for example be calculated approximative ⁇ by means of a theory such as "Large Deflection Theory, LDT".
  • LDT Large Deflection Theory
  • stray capacitances can be divided both in the fact that they affect the maximum value of the deviation from a linear behaviour and a deviation curve having different profiles over the measuring range of the sensor.
  • Different forms of deviations from the linear behaviour are illustrated in the diagrams of Figs. 2a, 2b, 2c and 2d.
  • FS Frull Scale
  • the desired compensation signal which is to be superposed on the deviation from a linear behaviour of the output signal can be described as a polynomial of the deviation from the normal position of the input signal, for instance of the pressure.
  • terms in the compensation signal can be achieved up to and including the quadratic term. It is more difficult to use functions having higher degrees when using electronic components of standard type. In such a linear compensation having at most quadratic terms it facilitates significantly if the deviation curve is symmetrical, see Fig. 2a.
  • the maximum magnitude of the deviation can be adjusted by means of adjustment of constants in the compensation function.
  • the magnitude and the shape of the curve of the deviation of the output signal from a linear dependence of the input signal can be influenced by designing the sensor element in different ways. It is conventional art to coat the sensor house part and the diaphragm part with an electrically conductive layer located on the outsides thereof, a shielding layer, which is connected to electrical ground.
  • the layer of material can be of gold, platinum, silver, an alloy of silver and platinum, titanium nitride, tin indium oxide, etc.
  • the exterior, usually flat surface of the plate-shaped house part has been provided with a centrally located recess having a bottom surface which is located at a small distance from that electrode in the measurement capacitor, which is coated on the interior side of the house part.
  • the exterior, grounded conductive layer is also coated in this recess and makes the electrical conditions around the capacitor electrode of the house part more uniform.
  • deviation of the output signal from a linear behaviour will be effected both as to magnitude and shape.
  • the sensor element obtains a reduced strength and the region at the bottom of the recess can even form a second flexible diaphragm, which will also in turn be influenced by the exterior pressure changes, for instance for a mounting of the sensor element where the load of the pressure which is to be measured is on only one side, that is, so that the pressure only acts on the measurement diaphragm, whereby this secondary diaphragm is influenced by the pressure changes in the surroundings, that is from the atmosphere.
  • the movement of this secondary diaphragm will then cause incorrectnesses in the function of the sensor element. Incorrect functions can naturally also occur by the fact that ruptures appear at the connection or transfer region between the differently thick portions of the house part.
  • a capacitive pressure sensor is described in the German patent application DE-A1 41 36 995 (Offenlegungsschrift).
  • the interior surface of the diaphragm 4 the movements of which are detected, is coated with an electrically conductive shielding layer 9 by means of thin film methods.
  • a thin dielectrical layer 10 is deposited, which operates as a carrier or support of the diaphragm electrodes 7, 7'.
  • the movable part will hereby be constituted by a rather complicated layered structure which will then present different characteristics as to elasticity and thus as to the movements, when the temperature varies, what results in that the detected quantity will have a dependence of temperature for which a prediction is difficult to make. It has also a negative influence on the zero stability of the measurement cell over long times.
  • a sensor element for a pressure sensor comprises, as is conventional according to what has been discussed above, a thick, stable house part, which on an interior surface comprises a first capacitor electrode having a flat surface. Further, a diaphragm is provided having an exterior surface which is intended to be exposed to the medium, the pressure of which is to be measured. On the exterior surface a first electrically conductive layer is arranged which is intended to be connected to electrical ground. On the opposite, interior surface of the diaphragm a capacitor electrode is provided having a flat surface.
  • the capacitor electrodes are located opposite each other and at a small distance from each other for forming an electrical capacitor, the capacitance of which is changed when the distance between the electrodes varies.
  • the various surfaces are generally parallel to each other and the house part and the diaphragm are constructed as plates having essentially the same outline or shape of the exterior edge thereof, in particular as circular plates having the same diameter.
  • a second electrically conducting layer is provided, which is arranged inside the house part, so that it on its both sides is surrounded by the material or portions of the house part, and which is parallel to the first capacitor electrode, at least its flat surface.
  • the second conductive layer constitutes an area which has a considerably larger extension than the first capacitor electrode and which surrounds this electrode, as viewed perpendicularly to the layer and the surface of the electrode, so that, as seen in this direction, a distance exists from the edge or the circumference of the electrode to the edge of the conductive layer, which is at least as large as a diameter or the largest measure of the electrode and preferably larger than it, for example 2 - 3 times this largest measure.
  • the capacitor electrode is thus located substantially opposite to an interior region of the second electrically conductive layer, which like the first layer is intended to be connected to electrical ground.
  • the distance from the second electrically conductive layer inside the house part to the capacitor electrode arranged on the house part is advantageously of the same magnitude of order as the distance from the first electrically conductive layer on the diaphragm to the capacitor electrode arranged on the diaphragm or is less than it and it can even be substantially smaller than it in order to make the electrical conditions around the capacitor electrodes more uniform.
  • the house part must have a sufficient stability, so that it will not be deflected for any of those pressure differences, to which the sensor element will be exposed. It is achieved by constructing the house part of a thicker support plate and a thinner shielding plate and the second, electrically conductive layer arranged therebetween.
  • the different carrying or supporting components of the house part and of the diaphragm is preferably made of ceramic material, in particular of glass ceramics. They are in the latter case joined to each other by means of glass joints.
  • a counterplate or a counterring for pressure sensors intended for low pressures having thin measurement diaphragms it can be advantageous if on the exterior side of the diaphragm an extra part is placed in the shape of a counterplate or a counterring, the portion of which that projects at the margin thereof or is located at the edge thereof is joined to the thin diaphragm as a joint of a suitable material, for example a glass joint.
  • a counterplate is in that case provided with through holes in order that the pressure from the medium, the pressure of which is to be measured, will reach and affect the measurement diaphragm itself. Providing a counterpart of this kind results in that the measurement diaphragm will be more uniformly attached or clamped at the portion thereof located at the circumference.
  • the counterplate or counterring stabilizes the thin diaphragm and reduces the risk that it will break when using the sensor element.
  • Fig. 1 is a cross section of a conventional pressure sensor element
  • Figs. 2a, 2b, 2c and 2d are typical curve shapes for the deviation of the output signal from a linear behaviour
  • Fig. 3 is a cross section of different parts for providing a pressure sensor having a low influence from stray capacitances
  • Fig. 4 is a partial section of a region of the sensor element in Fig. 3 where an electrical connection of an interior shielding layer is made, and
  • Figs. 5 and 6 show the sensor element parts according to Fig. 3 supplemented with different support elements.
  • Fig. 3 the different parts of a sensor element are shown in sectional views which are intended for pressure sensor of precision type and based on glass ceramics, where the parts are placed above each other before the final joining by heating in an oven for melting of the glass material in the joint regions.
  • the thick house part 3' here comprises two separate, circular ceramic plates, an upper thicker support plate 13 and a lower, thinner shielding plate 15. On one side of the shielding plate 15, on its interior surface and centrally thereon, as has been described earlier, one capacitor electrode 9 is arranged in the shape of a thin electrically conductive layer.
  • an electrically conductive layer 17 is provided, that extends all over of the surface and acts as a shielding plane and is to be connected electrically to a ground conductor, see the discussion hereinafter.
  • a joint layer 18 is provided, which comprises finely divided glass material retained by a generally organic binding agent.
  • a corresponding joint layer 19 can also be provided on the surface of the thicker support plate 13, which faces the surface of the shielding plate 15, that is provided with the electrically shielding layer 17.
  • the circular diaphragm 7 is as is conventional designed to have a thickness adapted to the pressure range, which is to be measured, and is centrally, on one of its surfaces, coated with a thin layer, that constitutes the second capacitor electrode 11 and over all of the opposite surface it is coated with an electrically conductive, thin shielding layer 21, which is also to be connected to a ground conductor.
  • a region 22 is also arranged comprising glass material for forming a glass joint and this region 22 has the shape of a circular cylindrical ring having a small extension in the axial direction. This extension or height is accurately adjusted and ground to a constant length, in order to produce, after heating and forming the glass joint, a desired distance between the surfaces of the shielding plate 15 and the diaphragm 7, which support or carry the capacitor electrodes 9 and 11, respectively.
  • a sensor element 1' is formed as an integrated unit.
  • the shielding layers 17 and 21 can comprise gold films, which are deposited or attached in the conventional way as in the manufacture of electronic thin film circuits.
  • the shielding layers 17, 21 can have typical thicknesses of the magnitude of order of 1 ⁇ m or less.
  • the joint layers between the shielding plate 17 and the support plate 3 can each one have the magnitude of order of 5 ⁇ m.
  • the electrodes 9 and 11 and the connections thereof respectively which are formed of suitable printed conductor patterns, not illustrated in the Figure, on the surfaces, where the electrodes 9 and 11 respectively are arranged, can be deposited or coated by means of the same, previously known methods.
  • the material that forms the joint regions 17 and 19 respectively all over of the surfaces can be deposited in a dotted or patterned manner, that is so that regions or channels void of glass material are provided when the glass material is initially deposited. It will facilitate the exit or disappearance of volatile substances in the final heating, so that no enclosures of gases or other substances are formed. For a suitable design and a suitable temperature during the heating process it can still be obtained that the joint produced by these layers 17 and 19 will be substantially homogeneous having no enclosed cavities.
  • the interior shielding layer 17 is not located easily available to come into electrical contact with a ground conductor, but therefor a special arrangement is required. It is illustrated in detail in Fig. 4.
  • a through-hole 23 is thus provided in the upper support plate 13, which hole extends between the two large surfaces of these plates.
  • solder tin 25 is provided which is in electrically conducting contact with the shielding layer 17 on the shielding plate 15.
  • an electrical conductor 27 is introduced downwards into the hole 23, possibly having some support material, as shown at 29, arranged at the sides thereof. In the heating or burning of the glass joint regions the solder tin melts and will come in electrically conducting contact with the electrical conductor 27. The conductor 27 is then electrically conducted to ground.
  • the thickness of the ceramic basic material in the shielding plate 15 can have the same magnitude of order as the thickness of the diaphragm 7 but is in many cases smaller, as is illustrated in Fig. 3.
  • the joint layer 19 on the support plate 13 can be eliminated, as is shown in Fig. 4, where for producing the glass joint between the shielding plate 15 and the support plate 13 only the joint layer 18 on the shielding plate 15 is provided.
  • the shielding plate can even be advantageous to design the shielding plate to have a very small thickness, in order to equalize or even out the electrical conditions in the neighbourhood of the capacitor plates 9 and 11.
  • the stability is provided by the upper support plate 13.
  • the influence of stray capacitances can be minimized in this way and further, the remaining deviation of the output signal from a linear behaviour can be adapted or adjusted to a desired shape.
  • the sensor element can be built into a pressure sensor constructed without any complicated compensational electronics and only comprising simple electronic standard components, which gives a low cost and a low current consumption for the whole pressure sensor comprising the sensor element, a housing or casing, not shown, and the associated driver electronics.
  • a further reinforcement can be arranged for the diaphragm by attaching a reinforcement element to the marginal portion of the thin diaphragm. It is shown schematically in Figs. 5 and 6, in which parts included in a sensor element are depicted in the same way as in Fig. 3.
  • a reinforcement element is provided in the shape of a plate 31 having an annular projection 32 on one of its large surfaces, at the margin thereof, and further comprising through-holes 33 in the interior, more centrally located region of the plate 31.
  • the counterplate 31 can be of a suitable material, for example of glass ceramic material like the other parts of the very sensor element 1' and is then joined to the shielding layer 21 on the diaphragm by means of a suitable glass ceramic material.
  • the reinforcement element can also be constituted by an annular element 31' according to Fig. 6, that corresponds to the annular projection 32 on the counterplate 31 according to Fig. 5.
  • a house part is produced of two plate shaped parts of an electrically isolating material such as glass ceramics, an outer thicker support plate and a thin shielding plate, and on one surface, the interior surface of the house part, that is on the inner side of the thin shielding plate, in a suitable pattern, an electrically conducting material is deposited such as by means of common thin film methods for forming a first capacitor electrode, that has a flat surface.
  • a diaphragm is produced of principally the same electrically isolating material in the shape of a plate and on one surface thereof, the interior surface, also an electrically conducting material is attached or deposited in a suitable pattern for forming a second capacitor electrode, having also a flat surface.
  • the house part and the diaphragm are joined to each other, so that the capacitor electrodes will be located opposite to each other having their flat surfaces located at a small distance from each other, so that an electrical capacitor is formed, the capacitance of which is changed, when the distance between the electrodes and in particular the flat surfaces thereof vary.
  • the two parts which constitute the house part are joined to each other and then, therebetween an electrically conducting layer is placed.
  • the electrically conducting layer is to be placed so that it extends in parallel to the flat surface of the first capacitor electrode, and further it should have a considerably larger extension than the first capacitor electrode, which will be located essentially at or opposite an interior, centrally located area of the electrically conducting layer, so that the conducting layer surrounds the capacitor electrode.
  • a further electrically conductive layer can be arranged on an exterior surface of the diaphragm.
  • a reinforcement element in the shape of an annular plate or a plate having an annular projection and made of electrically isolating material can further be attached to a region at the circumference of an exterior side of the diaphragm for stabilizing it.
PCT/SE1995/000425 1994-04-14 1995-04-18 Stabilized pressure sensor WO1995028624A1 (en)

Priority Applications (4)

Application Number Priority Date Filing Date Title
DE69521890T DE69521890T2 (de) 1994-04-14 1995-04-18 Stabilisierter drucksensor
US08/722,012 US5920015A (en) 1994-04-14 1995-04-18 Pressure sensor with capacitor electrodes and shield layer parallel thereto
EP95916908A EP0755507B1 (en) 1994-04-14 1995-04-18 Stabilized pressure sensor
JP52691495A JP3757984B2 (ja) 1994-04-14 1995-04-18 安定化圧力センサ

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
SE9401268A SE506558C2 (sv) 1994-04-14 1994-04-14 Givarelement för tryckgivare
SE9401268-9 1994-04-14

Publications (1)

Publication Number Publication Date
WO1995028624A1 true WO1995028624A1 (en) 1995-10-26

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Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/SE1995/000425 WO1995028624A1 (en) 1994-04-14 1995-04-18 Stabilized pressure sensor

Country Status (6)

Country Link
US (1) US5920015A (sv)
EP (1) EP0755507B1 (sv)
JP (1) JP3757984B2 (sv)
DE (1) DE69521890T2 (sv)
SE (1) SE506558C2 (sv)
WO (1) WO1995028624A1 (sv)

Cited By (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO1998037393A1 (en) * 1997-02-20 1998-08-27 Cecap Ab A sensor element having temperature measuring means
WO1999034184A1 (de) * 1997-12-23 1999-07-08 Unaxis Trading Ag Kapazitive vakuummesszelle
US7107855B2 (en) 1997-12-23 2006-09-19 Inficon Gmbh Membrane for capacitive vacuum measuring cell

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US20040099061A1 (en) * 1997-12-22 2004-05-27 Mks Instruments Pressure sensor for detecting small pressure differences and low pressures
US6209398B1 (en) * 1998-09-18 2001-04-03 Texas Instruments Incorporated Fluid pressure transducer apparatus and method for assembling
US6532834B1 (en) * 1999-08-06 2003-03-18 Setra Systems, Inc. Capacitive pressure sensor having encapsulated resonating components
FR2818676B1 (fr) * 2000-12-27 2003-03-07 Freyssinet Int Stup Procede de demontage d'un cable de precontrainte et dispositif pour la mise en oeuvre
JP3850263B2 (ja) * 2001-10-25 2006-11-29 京セラ株式会社 圧力検出装置用パッケージおよび圧力検出装置
US6837112B2 (en) * 2003-03-22 2005-01-04 Stec Inc. Capacitance manometer having a relatively thick flush diaphragm under tension to provide low hysteresis
US6993973B2 (en) * 2003-05-16 2006-02-07 Mks Instruments, Inc. Contaminant deposition control baffle for a capacitive pressure transducer
DE10323059A1 (de) * 2003-05-20 2004-12-09 Prominent Dosiertechnik Gmbh Sensormembran
US7141447B2 (en) * 2004-10-07 2006-11-28 Mks Instruments, Inc. Method of forming a seal between a housing and a diaphragm of a capacitance sensor
US7137301B2 (en) * 2004-10-07 2006-11-21 Mks Instruments, Inc. Method and apparatus for forming a reference pressure within a chamber of a capacitance sensor
JP2008160352A (ja) * 2006-12-22 2008-07-10 Yamaha Corp 静電容量センサ
US20080202251A1 (en) * 2007-02-27 2008-08-28 Iee International Electronics & Engineering S.A. Capacitive pressure sensor
DE102011081887A1 (de) * 2011-08-31 2013-02-28 Robert Bosch Gmbh Polymerschichtsystem-Drucksensorvorrichtung und Polymerschichtsystem-Drucksensorverfahren
US9605952B2 (en) 2012-03-08 2017-03-28 Quality Manufacturing Inc. Touch sensitive robotic gripper
WO2013134610A1 (en) 2012-03-08 2013-09-12 Quality Manufacturing Inc. Touch sensitive robotic gripper
US8943895B2 (en) 2012-09-07 2015-02-03 Dynisco Instruments Llc Capacitive pressure sensor
US9103738B2 (en) 2012-09-07 2015-08-11 Dynisco Instruments Llc Capacitive pressure sensor with intrinsic temperature compensation
US8984952B2 (en) 2012-09-07 2015-03-24 Dynisco Instruments Llc Capacitive pressure sensor
WO2016114674A1 (en) * 2015-01-15 2016-07-21 Stretchsense Limited An electromechanical device with improved connection
US10718359B2 (en) 2015-08-21 2020-07-21 Quality Manufacturing Inc. Devices and systems for producing rotational actuation
CN105784212B (zh) * 2016-03-25 2018-09-21 深圳安培龙科技股份有限公司 一种陶瓷电容式压力传感器及制备方法
JP6871721B2 (ja) * 2016-11-17 2021-05-12 株式会社堀場エステック 圧力式流量計
CN110702301A (zh) * 2019-11-19 2020-01-17 川北真空科技(北京)有限公司 一种薄膜真空计
WO2022019167A1 (ja) * 2020-07-21 2022-01-27 株式会社村田製作所 圧力センサ構造、圧力センサ装置および圧力センサ構造の製造方法
CN112834110A (zh) * 2020-12-30 2021-05-25 季华实验室 一种高精度电容薄膜真空计
US11940336B2 (en) * 2021-03-26 2024-03-26 Sporian Microsystems, Inc. Driven-shield capacitive pressure sensor

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US4935841A (en) * 1987-02-12 1990-06-19 Johnsson & Billquist Development Ab Pressure sensor
US4831492A (en) * 1987-05-08 1989-05-16 Vaisala Oy Capacitor construction for use in pressure transducers
US4823603A (en) * 1988-05-03 1989-04-25 Vacuum General, Inc. Capacitance manometer having stress relief for fixed electrode
DE4111118A1 (de) * 1991-04-03 1992-10-08 Univ Chemnitz Tech Mikromechanischer kapazitiver druckwandler
DE4136995A1 (de) * 1991-11-11 1993-05-13 Sensycon Ind Sensorsyst Kapazitiver drucksensor

Cited By (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO1998037393A1 (en) * 1997-02-20 1998-08-27 Cecap Ab A sensor element having temperature measuring means
US6439056B1 (en) 1997-02-20 2002-08-27 Mks Instruments Sensor element having temperature measuring means
WO1999034184A1 (de) * 1997-12-23 1999-07-08 Unaxis Trading Ag Kapazitive vakuummesszelle
US6591687B1 (en) 1997-12-23 2003-07-15 Inficon Gmbh Capacitive vacuum measuring cell
KR100545928B1 (ko) * 1997-12-23 2006-01-25 어낵시스 발처스 리미티드 용량식 진공 측정 셀
US7107855B2 (en) 1997-12-23 2006-09-19 Inficon Gmbh Membrane for capacitive vacuum measuring cell
JP2009008693A (ja) * 1997-12-23 2009-01-15 Inficon Gmbh 容量式の真空測定セル

Also Published As

Publication number Publication date
SE9401268L (sv) 1995-10-15
JPH10501887A (ja) 1998-02-17
EP0755507B1 (en) 2001-07-25
DE69521890T2 (de) 2004-08-12
JP3757984B2 (ja) 2006-03-22
SE9401268D0 (sv) 1994-04-14
DE69521890D1 (de) 2001-08-30
US5920015A (en) 1999-07-06
EP0755507A1 (en) 1997-01-29
SE506558C2 (sv) 1998-01-12

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