Pressure measuring system with self-closing throttle
10253898 ยท 2019-04-09
Assignee
Inventors
Cpc classification
G01F1/00
PHYSICS
Y10T137/7728
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F16K17/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K17/366
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K17/285
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16K17/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K17/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K17/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G01F1/00
PHYSICS
Abstract
A pressure measuring system is provided in which a closing element supported in the pressure fitting channel is activated or displaced by a pressure surge or a pressure wave and thereby seals the channel to the measuring element and thus prevents an outflow of the fluid.
Claims
1. A pressure measuring system comprising: a pressure fitting; a measuring element connected to the pressure fitting pressure-tight, the pressure fitting having a pressure channel on an inner side, which is connected pressure-tight to the measuring element an evaluation or signal transmitter; a movable closing element arranged in the pressure channel that seals the pressure channel when the pressure or volume rises; and a guide part, the guide part being a hollow, piston-shaped body, wherein the closing element is disposed entirely inside of the hollow, piston-shaped body and the hollow, piston-shaped body is arranged inside of the pressure channel.
2. The pressure measuring system according to claim 1, wherein the closing element is at least one molded body or a sphere.
3. The pressure measuring system according to claim 1, wherein the closing element is a deformable molded body made from rubber, silicone, or an elastic injection-molded part.
4. The pressure measuring system according to claim 1, wherein the closing element is adapted to be brought from a setpoint position into a sealing position in the pressure channel due to a pressure surge or a pressure wave in the pressure channel.
5. The pressure measuring system according to claim 1, wherein the closing element is brought from a setpoint position into a sealing position within the hollow, piston-shaped body due to a pressure surge or a bulk wave and then closes the pressure channel to the measuring element pressure-tight.
6. The pressure measuring system according to claim 1, wherein the closing element traverses a volume section of the pressure fitting due to a pressure surge or a bulk wave and compresses a defined volume into the inner volume of the measuring element and/or the pressure channel and closes the pressure channel pressure-tight.
7. The pressure measuring system according to claim 6, wherein a defined volume is compressed into the inner volume of the measuring element and/or the pressure channel, and wherein a defined pressure sets in due to the defined volume displacement, which is indicated as an overpressure, including a warning indication, on the evaluation display.
8. The pressure measuring system according to claim 1, wherein a warning message is continuously displayed as an evaluation of the pressure increase on a display or a dial due to a pressure surge or bulk wave.
9. The pressure measuring system according to claim 1, wherein the movable closing element seals the pressure channel in the case of a pressure rise, including a sudden or intermittent pressure increase.
10. The pressure measuring system according to claim 1, wherein a sudden or intermittent pressure increase comprises a pressure gradient of 5 to 150 bar/minute, or a pressure gradient of a multiple of 10 bar/second, or a pressure increase to greater than or equal to 350 bar or from 350 to 450 bar, and results in the rupture of the measuring system and the escape of a fluid, and wherein the movable closing element seals the pressure channel due to the resulting increase in the volume of the escaping fluid in the pressure channel.
11. The pressure measuring system according to claim 1, wherein the pressure measuring system measures pressure in pressure systems or on compressed gas cylinders filled with a welding gas, an acetylene-containing gas or gas mixture.
12. The pressure measuring system according to claim 1, wherein the hollow, piston-shaped body has at least one circumferential seal on its outer circumference.
13. The pressure measuring system according to claim 1, wherein an upper end of the hollow, piston-shaped body has an upper through-channel that is aligned with a measuring channel leading to a measuring tube of the measuring element.
14. The pressure measuring system according to claim 4, wherein a side surface of the hollow, piston-shaped body has at least one opening that forms a holding zone that holds the closing element when the closing element is in the setpoint position.
15. The pressure measuring system according to claim 1, wherein the guide part is displaceable within the pressure channel.
16. A pressure measuring system comprising: a pressure fitting; a measuring element connected to the pressure fitting pressure-tight, the pressure fitting having a pressure channel on an inner side, which is connected pressure-tight to the measuring element an evaluation or signal transmitter; and a movable closing element arranged in the pressure channel that seals the pressure channel when the pressure or volume rises, wherein a warning message is continuously displayed as an evaluation of the pressure increase on a display or a dial due to a pressure surge or bulk wave, and wherein the warning indication is continuously displayed on the evaluation display in that the pointer is caught and/or held in a warning position via ramps or stops.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The present invention will become more fully understood from the detailed description given hereinbelow and the accompanying drawings which are given by way of illustration only, and thus, are not limitive of the present invention, and wherein:
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DETAILED DESCRIPTION
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(22) An evaluation of the pressure at pressure fitting 3 may be implemented within the pressure measuring system gearlessly, with the aid of a transmission mechanism or electronically, e.g., with a pointer 4 on a dial 5 (
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(33) A groove or through-channel in the inner circumference of pressure channel 21 of pressure fitting 3 establishes a fluid communication to the sensor or measuring element in the normal state. Guide part 22E is held, in particular, in an idle position by its compressed sealing ring 25, and the guide part in the form of a piston 22E is displaced only by a pressure/volume surge in the direction of the sensor for the purpose of completely sealing pressure channel 21E/27E, a defined and calculated slip-stick effect of sealing rings 25 being helpful to avoid false activation, e.g., in the event of shocks.
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(41) It is simultaneously conceivable that the ramp 50 is also painted red, and special functions for an overpressure are furthermore integrated into the device.
(42) A horn, siren, blinking light or flashing light on or in the housing of the measuring instrument may thus be activated via a light barrier, contact actuator or reed switch with magnetic activation, which is powered from a battery or is powered from the surroundings of the measuring instrument using a buffer store via a photovoltaic cell or another power converter. In addition to light, heat, motion or the fluid itself, e.g. in the case of hydrogen, are also conceivable as the source therefor, if a fuel cell is used.
(43) It is also conceivable that a warning message, which contains the position via satellite and status of the cylinder, is sent to a warning center over a network, by SMS text messaging or via GPRS or according to another radio standard or protocol.
(44) The ramp 50 illustrated in this
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(47) During this phase, the pressure increase may rise at a rate of 5 to 50 bar/minute; in extreme cases, it may rise intermittently at rates of 50 to 150 bar/minute or up to 2 to 50 bar/second.
(48) At this point at the latest, the defined response of the illustrated throttle and closing elements sets in and prevents an outflow of fluid and protects the users and staff who work in the rooms or who want to protect the cylinder against dangerous, uncontrollable situations. These persons may include firefighting units who extinguish a fire in a company using, for example, acetylene compressed gas cylinders or users who have inadvertently knocked over the cylinder. A continuous warning display enables necessary security measures to be initiated at an early point.
(49) In principle, however multiple activation mechanisms are possible, two of which are mentioned here:
(50) In the first case, the pressure rises abruptly from a pressure of 40 to 50 bar to a pressure of more than 300 bar. The pressure gradient in this case is a multiple of 10 bar/second or even faster and is viewed as being abrupt or intermittent. The throttle will seal the instrument port as soon as the pressure wave reaches the closing element, e.g. a rubber sphere.
(51) In the second case, it is possible that the pressure rises slowly from the normal fluid pressure of the cylinder to the rupturing pressure of the measuring element. The pressure gradient is a multiple of 10 bar/minute (i.e., comparatively slower than the preceding case). In this case, since volume is first displaced, which sets the closing element in motion for triggering, the throttle responds only after the measuring element ruptures.
(52) The abrupt pressure difference which is generated when the measuring element ruptures, for example 350 to 450 bar rupture pressure in a gearless pressure measuring instrument as shown, for example in
(53) The invention being thus described, it will be obvious that the same may be varied in many ways. Such variations are not to be regarded as a departure from the spirit and scope of the invention, and all such modifications as would be obvious to one skilled in the art are to be included within the scope of the following claims.