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相关概念视频

Atomic Spectroscopy: Effects of Temperature01:27

Atomic Spectroscopy: Effects of Temperature

457
Atomization, converting samples into gas-phase atoms and ions, is essential for atomic spectroscopy. The flame temperature required for atomization affects the efficiency of the atomic spectroscopic methods by increasing the atomization efficiency and the relative population of the excited and ground states.
At thermal equilibrium, the relative populations of excited and ground state atoms can be estimated using the Maxwell–Boltzmann distribution. For example, an increase in temperature...
457
Flame Photometry: Overview01:02

Flame Photometry: Overview

804
Flame photometry, also known as flame emission spectrometry, is a technique used for the qualitative and quantitative analysis of elements present in a sample using a flame as the source of excitation energy. The concept of flame photometry was realized in the early 1860s by Kirchhoff and Bunsen, who discovered that specific elements emit characteristic radiation when excited in flames. The first instrument developed for this purpose was used to measure sodium (Na) in plant ash using a Bunsen...
804
Atomic Emission Spectroscopy: Instrumentation01:22

Atomic Emission Spectroscopy: Instrumentation

594
The instrumentation of atomic emission spectrometry (AES) involves various components, including atomization devices that convert samples into gas-phase atoms and ions. There are two main types of atomization devices: continuous and discrete atomizers.  Continuous atomizers, like plasmas and flames, introduce samples in a constant stream, while discrete atomizers inject individual samples using syringes or autosamplers. The most common discrete atomizer is the electrothermal atomizer.
594
Atomic Emission Spectroscopy: Overview01:20

Atomic Emission Spectroscopy: Overview

2.5K
Atomic emission spectroscopy (AES) is an analytical technique used to determine the elemental composition of a sample by analyzing the light emitted from excited atoms. In AES, atoms in a sample are excited to higher energy levels by thermal energy from high-temperature sources, such as plasma, arcs, or sparks. When these excited atoms return to lower energy states, they emit light at specific wavelengths characteristic of each element. The resulting atomic emission spectrum, which consists of...
2.5K
Flame Photometry: Lab01:16

Flame Photometry: Lab

362
In a flame photometer, when a solution like potassium chloride is aspirated into the flame, the solvent evaporates, leaving behind dehydrated salt. This salt dissociates into free gaseous atoms in their ground state. Some of these atoms absorb energy from the flame, leading to their excitation. The excited atoms return to the ground state, emitting photons at characteristic wavelengths. Because only electronic transitions are involved, the resulting emission lines are very narrow. The intensity...
362
IR Spectrometers01:25

IR Spectrometers

1.5K
There are two main infrared (IR) spectrophotometers: dispersive IR spectrometers and Fourier transform infrared (FTIR) spectrometers. In a dispersive IR spectrometer, a beam of infrared radiation produced by a hot wire is divided into two parallel equal-intensity beams using mirrors. One beam passes through the sample, while another is a reference beam. The beams then move through the monochromator, which separates the radiations into a continuous spectrum of different frequencies. The...
1.5K

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相关实验视频

Updated: Sep 11, 2025

High-resolution Thermal Micro-imaging Using Europium Chelate Luminescent Coatings
09:01

High-resolution Thermal Micro-imaging Using Europium Chelate Luminescent Coatings

Published on: April 16, 2017

7.8K

多光谱成像技术用于爆炸场的温度测量.

Pan Pei, Xiaojian Hao, Ziqi Wu

    Optics express
    |August 13, 2025
    PubMed
    概括

    这项研究引入了一种新的多光谱放射测量温度测量方法,用于准确评估爆炸温度场. 开发的多光谱辐射摄像头实现了高精度测量,达到2903.68 K.

    科学领域:

    • 热力学是一种热力学.
    • 光学工程是指光学工程.
    • 爆炸物科学科学 爆炸物科学

    背景情况:

    • 由于极端温度和恶劣的环境,爆炸温度场带来了重大的测量挑战.
    • 准确的温度监测对于了解爆炸性行为和确保安全至关重要.

    研究的目的:

    • 开发一种高精度,广泛的多光谱放射测量温度测量方法,用于爆炸场.
    • 为了准确测量40公斤含爆炸物产生的高温.

    主要方法:

    • 一个多光谱辐射摄像头 (MRC) 是使用一个CMOS传感器与25频段多光谱波器阵列 (MFA) 构建的.
    • 该MRC与高温黑体炉 (1973.15K至2973.15K) 进行校准.
    • 综合模拟回火 (GSA) 算法用于温度场测量.

    主要成果:

    • 爆炸火球的最大温度达到2903.68K.
    • 确定相对温度测量误差的最大值为1.93%.

    结论:

    • 拟议的多光谱放射测量方法在具有挑战性的爆炸环境中提供准确可靠的温度测量.
    • 这种技术是有效的特征温度动态的高能材料,如含的爆炸物.

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    Fiber Optic Distributed Sensors for High-resolution Temperature Field Mapping
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    Near-Infrared Temperature Measurement Technique for Water Surrounding an Induction-heated Small Magnetic Sphere
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