DEVICE FOR MEASURING THE FLOW OF AN INCOMPRESSIBLE FLUID, HAVING PROPELLING MEANS
20170073874 ยท 2017-03-16
Inventors
Cpc classification
G01F1/00
PHYSICS
G01F3/00
PHYSICS
International classification
Abstract
A system for metering at least one substance includes at least one inlet for fluid to be metered and one inlet for displacement fluid or transfer fluid, both giving access to a reservoir having an outlet from the reservoir which in turn gives access to a circuit portion in which only the displacement or transfer fluid circulates. The pump is located in this portion of the circuit, such that it works by suction for the portion of the system up to the reservoir and by impulsion beyond its position in the system.
Claims
1. System for metering at least one substance, comprising at least one inlet for fluid to be metered and one inlet for displacement fluid or transfer fluid, both giving access to a reservoir having an outlet from the reservoir which in turn gives access to a circuit portion in which only the displacement or transfer fluid circulates, said portion of the circuit having at least one access valve and one flow meter, the fluid to be metered being measured by measuring the transfer fluid displaced by the fluid to be impelled at its inlet into the system, characterised in that the pump is located in the above-mentioned portion of the circuit, such that it works by suction for the portion of the circuit upstream of the pump, and by impulsion in the region of the circuit located downstream of the pump.
2. System according to claim 1, characterised in that said portion of the system is configured as a bypass at the outlet of the reservoir, the pump being located in said bypass, preferably upstream of the access valve to the flow meter.
3. System according to claim 1, characterised in that said outlet from the reservoir gives direct access to the pump, the access valve and the flow meter, there being a bypass between the outlet from the reservoir and an intermediate point between the outlet from the pump and the set consisting of the access valve and the flow meter, and a second bypass between the inlet of transfer fluid into the system and a point upstream of the pump, the system having an additional outlet for the fluid to be metered that is independent of the above-mentioned outlet from the reservoir and has a specific valve, said outlets from the reservoir being joined together downstream of the flow meter.
4. System according to claim 3, characterised in that said additional outlet for the fluid is configured as a branch upstream of said inlet into the reservoir, such that the fluid to be metered travels towards the second outlet in the opposite direction from that of its inlet into the reservoir.
Description
[0015] To better understand the invention, some drawings of an embodiment of the present invention are attached by way of explanatory but non-restrictive example.
[0016]
[0017]
[0018]
[0019] The system in
[0020] Each of the inlets leads to a pipe -3- connected to the inlet of a receiving vessel -4- in which the fluid is stored.
[0021] The receiving vessel in this example has an outlet pipe -5- that branches. A first outlet valve -61- is positioned in the first branch -6-, while a second outlet valve -72- is positioned in the second branch -7-. Downstream of the second outlet valve -72- there is a flow meter -73-. The two branches -6-, -7- merge into the same pipe -8- feeding into a hydraulic circuit. Although this has not been shown in the figures, one or two non-return valves can be positioned in each of the branches -6-, -7-, close to the pipe -8- feeding the hydraulic circuit.
[0022] Characteristically, the system has a pump -200- downstream of the branch -7- of the circuit in which only the transfer fluid circulates.
[0023] Although
[0024]
[0025] In the active state the product or products, i.e. the second and third non-compressible fluids (fluids to be metered), are introduced into the circuit in sequence, upstream of the receiving vessel -4-. In this case, the impulsion would preferably come from the suction produced by the pump -200- during the process of measuring the displaced transfer fluid.
[0026]
[0027] In this embodiment, the outlet from the reservoir -4- gives direct access to the pump -200-, the access valve -72- and the flow meter -73-, there being a bypass -8- between the outlet from the reservoir and an intermediate point between the outlet from the pump -200- and the set consisting of the access valve -72- and the flow meter -73-. There is also a second bypass -9- between the inlet -1- of the transfer fluid into the system and a point upstream of the pump -200-, the opening of which is controlled by the valve -112-. Furthermore, the system has a second additional outlet -6- for the fluid to be metered, which is independent of the above-mentioned outlet and has a specific valve -61-, the outlet from the reservoir -5- and the additional outlet -6- being joined together downstream of the flow meter -73-. In the case shown, said additional outlet -6- is located upstream of the inlet into the reservoir, such that the fluid to be metered travels towards the second outlet -6- in the opposite direction from that of its inlet into the reservoir -4-. More specifically, the second outlet -6- is configured as a branch off the inlet tube -3-.
[0028]
[0029]
[0030]
[0031]
[0032] It should be noted that, in the various embodiments, by using suitable processes (such as those described) only low-cost transfer fluid circulates via the pump -200-, since it does not have to be compatible with the various chemical elements.
[0033] The elements in the figures can be arranged as in the drawings, with the inlets/outlets in a configuration with gravity, against gravity, or horizontal, as required.
[0034] Although the invention has been described in relation to preferred embodiments, these should not be considered to restrict the invention, which is to be defined by the broadest interpretation of the following claims.