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Gravimetry: Overview01:05

Gravimetry: Overview

Gravimetric analysis is a quantitative method where the analyte is isolated and weighed directly or after conversion into a substance of known composition. Gravimetric analysis can be classified as precipitation, electrogravimetry, volatilization, and particulate gravimetry, based on the method used to isolate the analyte.
In precipitation gravimetry, the analyte is converted into a precipitate and weighed. For example, the silver content in a sample can be estimated by precipitating and...
Volatilization01:10

Volatilization

Volatilization gravimetry is an analytical technique that measures the mass lost due to the volatilization of the substance. This technique is used to estimate the amount of volatile material in a sample. To perform this method, heat a known amount of the sample to a high temperature in a crucible or other suitable vessel. The volatile substance in the sample evaporates, and the vapor is completely expelled from the crucible either by heating the sample or bubbling a stream of inert gas through...
Precipitation Gravimetry01:03

Precipitation Gravimetry

Precipitation gravimetry is based on converting an analyte into a sparingly soluble precipitate, which is separated by filtration and weighed. An ideal precipitate should be pure, insoluble, of known composition, and easily filtered from the reaction mixture.
In determining nickel by gravimetric analysis, a precipitant of ethanolic dimethylglyoxime is added to a hot nickel salt solution. This is quickly followed by the dropwise addition of dilute ammonia solution until precipitation occurs. A...
Standard Solutions01:14

Standard Solutions

Standard solutions refer to solutions with a precisely known concentration or composition. A primary standard is a highly pure, high molar mass, stable substance that is entirely soluble in water, the most commonly used solvent in analytical chemistry. The primary standard solution can be used to standardize secondary standards, which are substances with known concentrations but are less pure and stable. Standard solutions are essential for achieving accurate and reliable results in analytical...
Gravimetry: Inorganic And Organic Precipitating Agents00:49

Gravimetry: Inorganic And Organic Precipitating Agents

In gravimetry, the precipitant is chosen carefully to obtain a pure solid that can be easily filtered. Common inorganic precipitants can be used to determine several cations and anions. In some cases, the formation of the same precipitate can be used to determine the cation and the anion. For example, the reaction of barium and chromate ions to give barium chromate is used to determine both barium and chromate. However, precipitates such as hydroxides, oxalates, and metal ammonium phosphates...
Specific Gravity of Aggregate01:19

Specific Gravity of Aggregate

Aggregates typically contain pores, which can be either permeable or impermeable. Considering the pores in the aggregates, the specific gravity of aggregates is defined in three different forms, namely, bulk or gross specific gravity, apparent specific gravity, and absolute specific gravity.
Bulk or gross specific gravity is calculated by taking the ratio of the mass of aggregates in the saturated surface-dry state to the total volume that includes both the solids and the voids within the...

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Related Experiment Video

Updated: May 28, 2026

Clean Sampling and Analysis of River and Estuarine Waters for Trace Metal Studies
10:44

Clean Sampling and Analysis of River and Estuarine Waters for Trace Metal Studies

Published on: July 1, 2016

A dynamic gravimetric standard for trace water.

P J Brewer1, B A Goody, P T Woods

  • 1National Physical Laboratory, Analytical Science Division, Teddington, Middlesex TW11 0LW, United Kingdom. paul.brewer@npl.co.uk

The Review of Scientific Instruments
|November 4, 2011
PubMed
Summary

A new system generates traceable water vapor reference standards from 5 to 2000 nmol/mol with ±2% uncertainty. This system shows excellent comparability with international metrology institutes.

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Area of Science:

  • Metrology
  • Analytical Chemistry
  • Environmental Science

Background:

  • Accurate water vapor reference standards are crucial for environmental monitoring and industrial processes.
  • Existing methods for generating trace levels of water vapor can be complex and challenging to calibrate.

Purpose of the Study:

  • To develop and validate a novel system for generating traceable reference standards of water vapor at trace levels.
  • To achieve high accuracy and comparability with international standards.

Main Methods:

  • Development of a system utilizing continuous mass loss measurements from a permeation device.
  • Integration of a dilution system employing an array of critical flow orifices.
  • Accurate measurement of mass loss and precise control of dilution ratios.

Main Results:

  • Successful generation of traceable water vapor reference standards in the range of 5 to 2000 nmol/mol.
  • Achieved an estimated relative expanded uncertainty of ±2% for most generated amount fractions.
  • Demonstrated excellent comparability with National Metrology Institutes in an international comparison.

Conclusions:

  • The developed system provides a reliable and accurate method for generating trace-level water vapor standards.
  • The system's performance is validated through international comparisons, confirming its metrological traceability and comparability.
  • This advancement supports accurate environmental measurements and industrial applications requiring precise water vapor control.