ANALYSIS SYSTEM FOR ANALYZING WATER AND WASTEWATER
20170343523 · 2017-11-30
Assignee
Inventors
Cpc classification
B01L2200/16
PERFORMING OPERATIONS; TRANSPORTING
B01L2200/025
PERFORMING OPERATIONS; TRANSPORTING
G01N33/1806
PHYSICS
B01L2200/0642
PERFORMING OPERATIONS; TRANSPORTING
B01L3/50
PERFORMING OPERATIONS; TRANSPORTING
International classification
B01L3/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Disclosed is an analysis system for analyzing water and wastewater, comprising an analysis device that includes a device housing which accommodates device components and which has an inlet on a housing surface, said inlet being designed as an injection port through which a substance to be analyzed can be introduced into a device component when the device housing is closed, and comprising a syringe that includes an injection needle outlet, the surface normal of which is congruent with the longitudinal axis; and/or the syringe includes an automatic ejection element for ejecting a predetermined amount of substance within a predetermined injection period.
Claims
1. An analysis system for analyzing water and wastewater, including an analysis device comprising a device housing accommodating device components and having, on a housing surface, an inlet opening formed as an injection port for introducing a substance to be analyzed into a device component when said device housing is closed, and a syringe having an outlet opening defined by an injection needle, a surface normal to the outlet opening coinciding with a longitudinal axis.
2. The analysis system according to claim 1, wherein said injection port is connected to a cylindrical reaction vessel for thermal disintegration of the substance to be analyzed, and includes a guiding element for guiding said syringe into a predetermined injection position.
3. The analysis system according to claim 2, wherein said guiding element is, in accordance with a shape of said injection needle, formed such that the longitudinal axis of the inserted injection needle coincides with the longitudinal axis of said reaction vessel, and comprises a cylindrical or conical guide sleeve.
4. The analysis system according to claim 3, wherein said guiding element comprises a stopper for limiting a depth of penetration of said injection needle into said reaction vessel.
5. The analysis system according to claim 11, wherein said ejection element is configured as a lockable compression spring, which acts on the plunger of said syringe.
6. An analysis system for analyzing water and waste water, according to claim 1, wherein a carrier gas supply is connected to said reaction vessel on an input side, said carrier gas supply including controls for setting a pressure and flow rate of a carrier gas to be supplied to said reaction vessel.
7. The analysis system according to claim 6, wherein said carrier gas supply comprises a first branch for supplying nitrogen and a second branch for supplying oxygen, wherein, in said first branch, a first pressure regulator and flow regulator for pressure regulation or flow regulation of supplied nitrogen are provided, and, in said second branch, a second pressure regulator and flow regulator for pressure regulation or flow regulation of oxygen to be mixed with the nitrogen are provided.
8. The analysis system according to claim 7, wherein said first and second pressure and flow regulators are configured and adapted such that a dilution by a factor of at least 10 is achieved during the mixing of the oxygen with the nitrogen.
9. An analysis system for analyzing water and waste water, according to claim 1, further comprising a detection and evaluation device for detecting a predetermined component of the substance to be analyzed and an adjustable post-processing device for manually controlled post-processing of a detection result.
10. The analysis system according to claim 9, wherein said detection device comprises at least one of an oxygen, a carbon dioxide, a nitrogen, or a phosphorus detector for detecting concentrations of at least one of oxygen, carbon dioxide, nitrogen, or phosphorus, respectively, in a time-dependent manner in a carrier gas flow exiting said reaction vessel, and said post-processing device for manually readjusting an integration time for integrating the respective concentration values detected in a time-dependent manner is provided.
11. The analysis system according to claim 1, wherein the syringe includes an automatically operating ejection element for ejecting a predetermined amount of substance in a predetermined injection period.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0012] Additional features and advantages of the invention are also apparent from the following brief description of an example embodiment with reference to the figures. In the figures:
[0013]
[0014]
[0015]
[0016]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0017]
[0018] The analysis device 1 comprises a thermal reaction vessel or a furnace EB, into which a water sample can be injected using a syringe MM via an injection port P arranged on the furnace top and in which the sample is thermally disintegrated. The furnace is supplied with a carrier gas flow which is composed of air and nitrogen via a check valve RM 1. The carrier gas flow is controlled by an air pressure regulator KH 1, a nitrogen pressure regulator KH2, an air flow regulator KH4 and a nitrogen flow regulator KH5 and filtered, on the input side of the furnace, by means of a first and second fine filter HQ1, HQ2. On the input side of the furnace, also an air-pressure indicator BP1 and a nitrogen pressure indicator BP2 are provided.
[0019] On the output side of the furnace, the gas flow first arrives at a condensate vessel CM 1, and the non-condensed portion is then passed through a quartz wool filter HQ3 and an acid trap HS1 before it reaches the oxygen detector B1, which eventually outputs a (electric) measurement to an adjustable evaluation device A, at which, in particular, an integration time for integrating a oxygen detection signal detected as a function of time is provided; see below for further details.
[0020]
[0021] A carriage 5 having dimensions adapted to the opening 1B′, on which the furnace EB, the condensate vessel CM 1, the quartz wool filter HQ3 and the acid trap HS1 are arranged, can be pulled out of the case to such an extent that said components are freely accessible. In the retracted state of the carriage 5, the device housing 1′ is closed by the door 3.
[0022] On the right side of the front panel 1A′ a panel IC is located, on which a plurality of operating and display elements are arranged, including a temperature indicator/control TC and the setting regulators KH1 and KH2 for air or nitrogen pressure and the associated display elements BP1 and BP1.
[0023] On top of the device 1D′ the injection port P is located, the structure and dimensions of which are adapted to those of the syringe MM shown in
[0024]
[0025] In the syringe reservoir MM3, a syringe plunger MM4 is supported in a longitudinally displaceable manner, the free end of which is configured in a conventional manner for manually withdrawing a sample. At the upper end of the syringe reservoir, a compression spring MM5 is embedded therein, the upper end of which is supported against the upper end wall of the syringe reservoir and the lower end of which is acting on the end of syringe plunger MM4. After filling the syringe, the syringe plunger is locked by means of a locking lever MM6 with the spring MM5 being biased. After releasing the lock MM6, the syringe plunger MM4 is pressed downwards by the force of the compression spring MM5 and the sample contained in the syringe reservoir MM3 is injected into the furnace in a predetermined time interval or at a predetermined discharge rate.
[0026] This discharge of the predetermined sample amount at an exactly predetermined rate or in an exactly defined time interval is as important for reproducible results as the exact injection position and direction ensured by the particular design of the injection needle and the injection port.
[0027]
[0028] However, the embodiment of the invention is not limited to this example, but a variety of modifications which are within the scope of ordinary skill in the art are possible.