Method, device and system for detecting components of coated sample and medium
By using characteristic wavelength light irradiation and filter technology, the problem of high cost and low efficiency in sample composition detection after coating is solved, and accurate composition detection is achieved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- CHINA TOBACCO FUJIAN IND
- Filing Date
- 2026-02-10
- Publication Date
- 2026-05-05
AI Technical Summary
In existing technologies, the composition detection of coated samples is costly, inefficient, and difficult to accurately distinguish the spectral characteristics of the components to be tested.
The coated sample is irradiated with light of a characteristic wavelength. The presence or content of the analyte is determined by judging whether there are characteristic peaks in the characteristic spectrum. Interference information of non-analyte components is filtered out by using a filter to improve the accuracy of the spectrum.
It achieves low-cost, efficient and accurate component detection, improving the accuracy and efficiency of detecting the components to be tested in the coated sample.
Smart Images

Figure CN121978044A_ABST
Abstract
Description
Technical Field
[0001] This disclosure relates to the field of tobacco production technology, and in particular to a method, apparatus, system, computer-readable storage medium, and computer program product for detecting the components of a coated sample. Background Technology
[0002] In the production process of tobacco product raw materials (such as reconstituted tobacco), the chemical composition of the coating substrate is relatively fixed and has good batch consistency. However, the stability of the chemical composition in the coated sample after coating with coating liquid has a significant impact on the intra-batch stability and inter-batch consistency of the tobacco product raw materials.
[0003] In related technologies, in order to evaluate the stability of various chemical components in the coated sample, offline detection of various chemical components in the coated sample is carried out through chemical experiments. Summary of the Invention
[0004] The inventors of this disclosure have discovered the following problems in the aforementioned related technologies: high cost and low efficiency of component detection.
[0005] To address the aforementioned problems, the present disclosure provides the following solutions.
[0006] According to some embodiments of this disclosure, a method for detecting the composition of a coated sample is provided, comprising: irradiating a coated sample prepared by adding a coating liquid to a coated substrate with light of a characteristic wavelength corresponding to the component to be measured, thereby obtaining a characteristic spectrum corresponding to the coated sample; determining whether a characteristic peak corresponding to the characteristic wavelength exists in the characteristic spectrum; and detecting the component to be measured in the coated sample based on the result of the determination, wherein the characteristic wavelength is determined as follows: obtaining a first spectrum corresponding to the coated substrate and a second spectrum corresponding to the component to be measured, wherein the first spectrum includes a plurality of first absorption peaks and a first wavelength corresponding to each of the plurality of first absorption peaks, and the second spectrum includes a plurality of second absorption peaks and a second wavelength corresponding to each of the plurality of second absorption peaks; and determining the characteristic wavelength corresponding to the component to be measured from the second spectrum based on a first difference between the first wavelength and the second wavelength.
[0007] In some embodiments, the analyte includes multiple components, and determining the characteristic wavelength corresponding to each analyte from the second spectrum based on the first difference between the first wavelength and the second wavelength includes: determining the second wavelength among the plurality of second wavelengths whose difference from the first wavelength is greater than a threshold as the candidate wavelength corresponding to each component; and determining the characteristic wavelength corresponding to each component based on the difference between the candidate wavelengths corresponding to different components.
[0008] In some embodiments, the plurality of components includes glycerol and propylene glycol, wherein the difference between a first characteristic wavelength corresponding to glycerol and a second characteristic wavelength corresponding to propylene glycol is greater than a preset threshold.
[0009] In some embodiments, the first characteristic wavelength includes a plurality of third wavelengths, the second characteristic wavelength includes a plurality of fourth wavelengths, and determining whether there is a characteristic peak in the characteristic spectrum corresponding to the characteristic wavelength includes: determining whether there is a plurality of characteristic peaks in the characteristic spectrum corresponding to the plurality of third wavelengths not less than a preset number; and / or determining whether there is a plurality of characteristic peaks in the characteristic spectrum corresponding to the plurality of fourth wavelengths not less than the preset number.
[0010] In some embodiments, determining whether the analyte exists in the coated sample based on the result of the determination includes: in response to the result of the determination being that a characteristic peak corresponding to the first characteristic wavelength and / or a characteristic peak corresponding to the second characteristic wavelength exists, determining that the glycerol and / or the propylene glycol exists in the coated sample, and determining the content of the glycerol and / or the propylene glycol based on the characteristic peak; in response to the result of the determination being that a characteristic peak corresponding to the first characteristic wavelength and a characteristic peak corresponding to the second characteristic wavelength do not exist, determining that the glycerol and the propylene glycol do not exist in the coated sample.
[0011] In some embodiments, irradiating a coated sample prepared by adding a coating liquid to a coated substrate with light of a characteristic wavelength corresponding to the component to be tested includes: setting a characteristic wavelength range corresponding to the characteristic wavelength according to the half-peak width of the characteristic peak; and allowing light with wavelengths within the characteristic wavelength range to irradiate the coated sample.
[0012] In some embodiments, the size of the characteristic wavelength range is inversely correlated with the full width at half maximum (FWHM) of the characteristic peak.
[0013] In some embodiments, the component to be tested includes multiple components, the characteristic wavelength includes multiple sets of wavelengths corresponding to the multiple components, the characteristic wavelength range includes multiple wavelength ranges corresponding to the multiple sets of wavelengths, and the step of allowing light with wavelengths within the characteristic wavelength range to irradiate the coated sample includes: using a filter configured with multiple filter components corresponding to the multiple wavelength ranges to filter light across the entire wavelength range, wherein each of the multiple filter components is configured to allow light within the wavelength range corresponding to each filter component to pass through.
[0014] In some embodiments, the rated speed of the motor of the filter is greater than a first specified threshold, and the scanning speed of the filter is greater than a second specified threshold.
[0015] According to further embodiments of this disclosure, an apparatus for detecting the composition of a coated sample is provided, comprising: a memory; and a processor coupled to the memory, the processor being configured to execute the composition detection method of any of the above embodiments based on instructions stored in the memory device.
[0016] According to further embodiments of this disclosure, a component detection system for a coated sample is provided, comprising: the component detection device and a filter as described in any of the above embodiments, the filter being configured to allow light of a characteristic wavelength corresponding to the component to be measured to irradiate the coated sample made by adding a coating liquid to a coated substrate.
[0017] In some embodiments, the filter is configured with a plurality of filter components corresponding to a plurality of wavelength ranges, each of the plurality of filter components being configured to allow light within a wavelength range corresponding to each filter component to pass through.
[0018] According to further embodiments of the present disclosure, a computer-readable storage medium is provided that stores computer instructions thereon, which, when executed by a processor, implement the component detection method of any of the above embodiments.
[0019] According to further embodiments of this disclosure, a computer program product is also provided, including instructions that, when executed by a processor, cause the processor to perform the component detection method according to any of the foregoing embodiments.
[0020] In the above embodiments, the characteristic spectrum used for component detection is generated by the interaction between light of a characteristic wavelength and the analyte (e.g., absorption of light of the characteristic wavelength). This avoids interference from non-analyte components after the sample is irradiated with light across the entire wavelength range, thus improving the accuracy of the acquired characteristic spectrum. Therefore, the accuracy of component detection based on the acquired characteristic spectrum is improved, achieving low-cost, efficient, and accurate component detection. Attached Figure Description
[0021] The accompanying drawings, which form part of this specification, illustrate embodiments of this disclosure and, together with the specification, serve to explain the principles of this disclosure.
[0022] This disclosure will become clearer with reference to the accompanying drawings and the following detailed description, wherein:
[0023] Figure 1 A flowchart illustrating a component detection method according to some embodiments of the present disclosure is shown;
[0024] Figure 2 A flowchart illustrating a wavelength determination method according to some embodiments of the present disclosure is shown;
[0025] Figure 3 A schematic diagram of the structure of a filter according to some embodiments of the present disclosure is shown;
[0026] Figure 4 A schematic diagram of a first and a second spectrum according to some embodiments of the present disclosure is shown;
[0027] Figure 5 A block diagram of a component detection apparatus according to some embodiments of the present disclosure is shown;
[0028] Figure 6 Block diagrams of component detection apparatus according to other embodiments of the present disclosure are shown;
[0029] Figure 7 A block diagram of a component detection apparatus according to some embodiments of the present disclosure is shown. Detailed Implementation
[0030] Various exemplary embodiments of the present disclosure will now be described in detail with reference to the accompanying drawings. It should be noted that, unless otherwise specifically stated, the relative arrangement, numerical expressions, and values of the components and steps set forth in these embodiments do not limit the scope of the present disclosure.
[0031] At the same time, it should be understood that, for ease of description, the dimensions of the various parts shown in the accompanying drawings are not drawn according to actual scale.
[0032] The following description of at least one exemplary embodiment is merely illustrative and is in no way intended to limit this disclosure or its application or use.
[0033] Techniques, methods, and equipment known to those skilled in the art may not be discussed in detail, but where appropriate, such techniques, methods, and equipment should be considered part of the specification.
[0034] In all examples shown and discussed herein, any specific values should be interpreted as merely exemplary and not as limitations. Therefore, other examples of exemplary embodiments may have different values.
[0035] It should be noted that similar labels and letters in the following figures indicate similar items; therefore, once an item is defined in one figure, it does not need to be discussed further in subsequent figures.
[0036] As mentioned earlier, offline detection of various chemical components in coated samples is costly and inefficient.
[0037] The inventors of this disclosure have discovered that spectroscopic analysis technology can simultaneously determine the content of multiple chemical components using small sample quantities, by utilizing the differences in absorption wavelengths and intensities produced by different functional groups or the same functional group in different chemical environments. This improves the efficiency and reduces the cost of component detection. For example, continuous spectroscopy techniques include full-spectrum techniques (such as Fourier transform and scanning monochromatic grating) and regional spectroscopy techniques (such as diode arrays and acousto-optic modulation). Continuous spectroscopy techniques comprehensively scan and capture information from the sample, and then detect the analyte.
[0038] However, due to the complex and diverse chemical composition of the coating solution, irradiating the coated sample (made by adding the coating solution to the substrate) with light across the entire wavelength range can easily introduce interference information from other components in the coated sample into the acquired spectrum. This makes it difficult to accurately distinguish the spectral characteristics caused by the analyte in the acquired spectrum, resulting in low accuracy in component analysis based on the acquired spectrum.
[0039] In view of this, this disclosure proposes a component detection method that can achieve low-cost, efficient and accurate component detection.
[0040] For example, this component detection method can be implemented according to the following embodiments.
[0041] Figure 1 A flowchart illustrating a component detection method according to some embodiments of the present disclosure is shown.
[0042] like Figure 1 As shown, in step 110, the coated sample, which is made by adding coating liquid to a coated substrate, is irradiated with light of a characteristic wavelength corresponding to the component to be tested, so as to obtain the characteristic spectrum corresponding to the coated sample.
[0043] In step 120, it is determined whether there is a characteristic peak in the characteristic spectrum that corresponds to the characteristic wavelength.
[0044] In step 130, based on the judgment result, the analyte in the coated sample is detected. For example, the presence of the analyte in the coated sample is detected based on the judgment result.
[0045] In the above embodiments, the coated sample is irradiated with light of a characteristic wavelength corresponding to the component to be tested to obtain the corresponding characteristic spectrum, and the component to be tested in the coated sample is detected based on whether there is a characteristic peak in the characteristic spectrum corresponding to the characteristic wavelength.
[0046] In this way, the characteristic spectrum used for component detection is generated by the interaction between light of a characteristic wavelength and the analyte (e.g., absorption of light of the characteristic wavelength). This avoids interference from non-analyte components after the sample has been irradiated with light across the entire wavelength range, thus improving the accuracy of the acquired characteristic spectrum. Consequently, the accuracy of component detection based on the acquired characteristic spectrum is improved, achieving low-cost, efficient, and accurate component detection.
[0047] The following examples illustrate the method for determining the characteristic wavelength corresponding to the component to be measured in step 110.
[0048] Figure 2 A flowchart illustrating a wavelength determination method according to some embodiments of the present disclosure is shown.
[0049] like Figure 2 As shown, in step 210, the first spectrum corresponding to the coated substrate and the second spectrum corresponding to the component to be measured are obtained.
[0050] Here, the first spectrum includes a plurality of first absorption peaks and a first wavelength corresponding to each of the plurality of first absorption peaks, and the second spectrum includes a plurality of second absorption peaks and a second wavelength corresponding to each of the plurality of second absorption peaks.
[0051] It should be noted that the second spectrum corresponding to the analyte refers to the spectrum obtained by performing spectral analysis on the analyte alone. The spectral characteristics in the second spectrum originate from the interaction between the analyte and light. For example, a coating solution containing only the analyte can be irradiated with light across the entire wavelength range to obtain the second spectrum corresponding to the analyte.
[0052] In some embodiments, the first spectrum, the second spectrum, and the characteristic spectrum can all be infrared spectra. If the first spectrum and / or the second spectrum are displayed as a graph, the horizontal axis represents wavelength variation, for example, in micrometers (µm), and the vertical axis represents the degree of light absorption by the chemical components, for example, expressed as transmittance, in percentages (%). For example, the horizontal axis can also be represented by wavenumber, and the conversion formula between wavenumber and wavelength is: wavenumber (cm²) = wavenumber(cm²) / wavelength( ... -1 ) = 10 4 / wavelength (µm).
[0053] It should be noted that infrared spectroscopy is an analytical technique that observes the emission of infrared light by a substance after absorbing light of a specific wavelength. The basic principle of infrared spectroscopy is to obtain molecular dynamics information by recording the relationship between the intensity and wavelength of the infrared light emitted by a sample after excitation. It is suitable for the component analysis of chemical components with infrared properties (such as aromatic compounds).
[0054] Depending on the measurement mode, infrared spectroscopy can be divided into excitation spectroscopy and emission spectroscopy. The horizontal axis of the infrared spectrum curve represents the excitation wavelength or emission wavelength (e.g., in nanometers (nm)), and the vertical axis represents the infrared intensity.
[0055] In step 220, the characteristic wavelength corresponding to the component to be measured is determined based on the difference between the first wavelength and the second wavelength.
[0056] Here, the characteristic wavelength corresponding to the component to be measured is used to obtain the characteristic spectrum of the coated sample. The coated sample is made by adding coating liquid to the coating substrate. The characteristic spectrum is used to detect the component to be measured in the coated sample.
[0057] For example, the characteristic wavelength of the analyte can be determined based on the difference between the first wavelength corresponding to the peak value of each first absorption peak and the second wavelength corresponding to each second absorption peak.
[0058] In the above embodiments, by comparing the differences between the spectrum of the coated substrate and the spectrum of the component to be tested (e.g., the differences between the wavelengths corresponding to the peaks), the specific spectral response introduced by the component to be tested can be effectively identified.
[0059] This eliminates interference from non-analytical chemical components in the coating substrate and coating solution, accurately locates the characteristic wavelengths that can be used to identify the analytes, and provides a reliable basis for subsequent qualitative and quantitative analysis of the analytes. This improves the accuracy of subsequent component detection based on the characteristic spectrum obtained by irradiating the coated sample with light of the characteristic wavelength.
[0060] In some embodiments, the components to be measured include multiple components. The second wavelengths among multiple second wavelengths whose difference from the first wavelength is greater than a threshold are determined as candidate wavelengths corresponding to each component. Then, based on the difference between the candidate wavelengths corresponding to different components, the characteristic wavelength corresponding to each component is determined.
[0061] For example, a characteristic wavelength corresponding to each component is determined based on the candidate wavelengths whose differences between candidate wavelengths corresponding to different components are greater than a preset threshold. Conversely, candidate wavelengths whose differences between candidate wavelengths corresponding to different components are not greater than a preset threshold are not determined as characteristic wavelengths.
[0062] For example, for two different components A and B, the candidate wavelengths corresponding to A include x1, x2, and x3, and the candidate wavelengths corresponding to B include y1, y2, and y3. If the difference between x1 and y1 is relatively small compared to the differences between the other candidate wavelengths corresponding to A and B (i.e., not greater than a preset threshold), then neither x1 nor y1 will be determined as a characteristic wavelength. That is, the characteristic wavelengths corresponding to A are determined to be x2 and x3, and the characteristic wavelengths corresponding to B are determined to be y2 and y3.
[0063] In some embodiments, the number of characteristic wavelengths corresponding to each component can be one or more.
[0064] It should be noted that the difference between the second wavelength and the first wavelength and / or the difference between candidate wavelengths can be an absolute difference or a relative difference.
[0065] For example, a second wavelength with a large absolute or relative difference from the first wavelength can be identified as a candidate wavelength.
[0066] For example, the difference between each second wavelength and each first wavelength can be compared, and one or more second wavelengths whose differences satisfy a threshold can be identified as candidate wavelengths corresponding to the component to be measured. Alternatively, the difference between each second wavelength and each first wavelength can be compared, and one or more second wavelengths with larger differences can be selected as candidate wavelengths in descending order of value.
[0067] In the above embodiments, a second wavelength that is significantly different from the first wavelength is selected as a candidate wavelength for each component, and then the characteristic wavelength corresponding to each component is determined based on the difference between the candidate wavelengths corresponding to different components.
[0068] In this way, during the process of determining the characteristic wavelengths corresponding to multiple analytes, a difference-based dual screening mechanism ensures that the characteristic wavelengths corresponding to each component do not overlap. This allows the characteristic spectra obtained by irradiating the coated sample with light of the characteristic wavelength to more accurately reflect the specific spectral response caused by each component, thereby improving the accuracy of subsequent component detection based on the characteristic spectrum.
[0069] In some embodiments, a characteristic wavelength corresponding to each component is determined based on the differences between candidate wavelengths corresponding to different components and the differences between different candidate wavelengths corresponding to each component.
[0070] In this way, by ensuring significant differences among the candidate wavelengths selected as characteristic wavelengths in determining the characteristic wavelengths for a single analyte, it is possible to guarantee that the different characteristic wavelengths corresponding to each component do not overlap. This reduces the overlap of characteristic peaks corresponding to different characteristic wavelengths, thereby minimizing the interference of overlapping peaks on subsequent component detection. This improves the accuracy of subsequent component detection based on characteristic spectra.
[0071] In some embodiments, a characteristic wavelength corresponding to each component is determined based on candidate wavelengths where the difference between different candidate wavelengths corresponding to each component is greater than a preset threshold and candidate wavelengths where the difference between different candidate wavelengths corresponding to each component is greater than a preset threshold.
[0072] For example, if the candidate wavelengths corresponding to a certain component to be measured include x1, x2, and x3, and the difference between x1 and x2 is not greater than a preset threshold (i.e., the difference is small), then neither x1 nor x2 will be determined as a characteristic wavelength. Moreover, if the difference between the candidate wavelength x3 to be selected as a characteristic wavelength and the candidate wavelengths corresponding to other components to be measured is greater than a preset threshold (i.e., the difference is large), then the characteristic wavelength corresponding to the component to be measured will be x3.
[0073] In other words, for each component, the candidate wavelength that serves as the characteristic wavelength not only differs from other candidate wavelengths corresponding to that component by a greater than a preset threshold (i.e., the difference is large), but also differs from candidate wavelengths corresponding to other components by a greater than a preset threshold.
[0074] That is, candidate wavelengths whose differences between different candidate wavelengths corresponding to each component are not greater than a preset threshold are not determined as characteristic wavelengths, and candidate wavelengths whose differences between different candidate wavelengths corresponding to different components are not greater than a preset threshold are also not determined as characteristic wavelengths.
[0075] In the above embodiments, the difference-based triple screening mechanism ensures that the characteristic wavelengths corresponding to each component do not overlap with the first wavelength in the background spectrum, that different characteristic wavelengths corresponding to each component do not overlap with each other, and that characteristic wavelengths corresponding to different components do not overlap with each other. This reduces the overlap between absorption peaks and characteristic peaks in the background spectrum, the overlap between different characteristic peaks corresponding to each component, and the overlap between characteristic peaks corresponding to different components, thereby effectively improving the accuracy of detecting multiple components based on characteristic spectra.
[0076] Heated cigarettes and other novel tobacco products, as emerging strategic products in the tobacco industry, have gained popularity among consumers due to their ability to provide a certain tobacco-like experience while reducing the release of harmful components, and have experienced rapid development in recent years. Reconstituted tobacco, as an important component of heated cigarette core materials, is receiving increasing attention in new tobacco products and in areas such as harm reduction and tar reduction because of its high plasticity and the ability to adjust and control its chemical composition within a certain range.
[0077] Heated cigarettes are produced by rapidly heating tobacco segments using a heat source (such as electric heating or charcoal heating), causing the tobacco components to be released quickly. This necessitates the addition of atomizing agents to the tobacco segments (such as reconstituted tobacco) to bring out the aroma components during atomization. Glycerin and propylene glycol are commonly used atomizing agents in heated cigarettes, and their content directly affects the atomization effect and smoke concentration.
[0078] Therefore, accurate component analysis of glycerol and propylene glycol is of great significance for the production of heated cigarettes.
[0079] In some embodiments, the multiple components include glycerol and propylene glycol, and the difference between the first characteristic wavelength corresponding to glycerol and the second characteristic wavelength corresponding to propylene glycol is greater than a preset threshold.
[0080] Considering the similarity in molecular structure and functional groups of glycerol and propylene glycol, in order to avoid qualitative errors, if the candidate wavelengths corresponding to glycerol and propylene glycol are relatively close (i.e., the difference is less than the preset threshold), then the corresponding candidate wavelengths will not be selected as characteristic wavelengths.
[0081] For example, the difference between the candidate wavelength of 3408 nm for glycerol and the candidate wavelength of 3411 nm for propylene glycol is small and difficult to distinguish accurately, so neither of these candidate wavelengths was selected as the characteristic wavelength.
[0082] In this way, during the component detection of glycerol and propylene glycol, since the difference between the first characteristic wavelength corresponding to glycerol and the second characteristic wavelength corresponding to propylene glycol is greater than the preset threshold, that is, the characteristic wavelengths corresponding to each component do not overlap and have large differences, the characteristic spectrum obtained by irradiating the coated sample with light with the first and second characteristic wavelengths can more accurately reflect the specific spectral response caused by glycerol and propylene glycol respectively, thereby improving the accuracy of subsequent component detection of glycerol and propylene glycol based on characteristic spectra, and thus improving the production quality of heated cigarettes.
[0083] The implementation of step 110 will be illustrated below with reference to some embodiments.
[0084] In some embodiments, a characteristic wavelength range corresponding to the characteristic wavelength is set according to the half-peak width of the characteristic peak, allowing light with wavelengths within the characteristic wavelength range to irradiate the coated sample.
[0085] It should be noted that the half-width at half-maximum (FWHM) of a characteristic peak refers to the full width (wavelength range) at half the height of the characteristic peak (also known as the characteristic peak height). The FWHM of a characteristic peak can reflect the sharpness of the characteristic peak. For example, the wider the FWHM of a characteristic peak, the smoother the characteristic peak, that is, the lower its sharpness; the narrower the FWHM of a characteristic peak, the sharper the characteristic peak, that is, the higher its sharpness.
[0086] In the above embodiments, the characteristic wavelength range is set by using the full width at half maximum (FWHM) so that the energy of the light source is concentrated in the effective wavelength band, avoiding energy waste in the ineffective wavelength. This ensures that the energy of the incident light is concentrated in the most effective excitation region, thereby helping to improve the accuracy of the acquired characteristic spectrum and thus improving the accuracy of component detection.
[0087] In some embodiments, the size of the characteristic wavelength range is inversely related to the full width at half maximum (FWHM) of the characteristic peak. For example, the wider the FWHM of the characteristic peak, i.e. the flatter the characteristic peak, the smaller the allowable characteristic wavelength range can be set; the narrower the FWHM of the characteristic peak, i.e. the sharper the characteristic peak, the larger the allowable characteristic wavelength range can be set.
[0088] For example, a filter can be used to filter light across the entire wavelength range to allow light with wavelengths within the characteristic wavelength range to illuminate the coated sample. For instance, the filter can be configured with filtering components corresponding to the characteristic wavelength range. These filtering components can be, for example, optical filters.
[0089] As one implementation method, after determining the characteristic wavelength corresponding to the component to be measured, the range of characteristic wavelengths that the filter can allow to pass through can be set by adjusting the half-width at half-maximum (HWHM) of the filter. Here, the HWHM of the filter refers to the bandwidth at half the peak transmittance in the transmittance curve of the filter for filtering light.
[0090] The full width at half maximum (FWHM) of a filter indicates the range of wavelengths that the filter allows to pass through. The narrower the FWHM, the smaller the range of characteristic wavelengths that the filter allows to pass through, indicating that the filter has higher selectivity for characteristic wavelengths, and thus can better transmit light of other wavelengths in the non-characteristic wavelength range.
[0091] For example, if the sharpness of the characteristic peak is high, that is, the narrower the half-width at half-maximum (WHM) of the characteristic peak, the WHM of the filter can be widened to allow the filter to pass through a wider range of characteristic wavelengths; if the sharpness of the characteristic peak is low, that is, the WHM of the characteristic peak is wide, the WHM of the filter can be narrowed to allow the filter to pass through a smaller range of characteristic wavelengths.
[0092] In the above embodiments, if the characteristic peak corresponding to the analyte is relatively flat (i.e., the half-maximum width is large), it indicates that the response intensity change caused by the interaction between light and the analyte is small over a wide wavelength range, resulting in low spectral selectivity. In this case, if the sample is still allowed to be irradiated with light over a wide wavelength range, the effective light energy will be dispersed across multiple wavelengths with insignificant response differences, which will not only reduce the excitation response at the characteristic wavelength but may also introduce unnecessary interference information. Therefore, appropriately narrowing the allowed wavelength range can improve the accuracy of the obtained characteristic spectrum.
[0093] If the characteristic peak is sharp (i.e., the half-maximum width at half-maximum is small), it indicates that the analyte produces a strong response only within a very narrow wavelength band, with significant differences in response between different wavelengths. However, excessively narrow wavelength restrictions can easily lead to instability in the filtered optical signal. Therefore, in this case, appropriately widening the permissible wavelength range can improve the reliability of the obtained characteristic spectrum while ensuring the main excitation response.
[0094] In this way, by setting the size of the characteristic wavelength range according to the inverse correlation with the half-peak width of the characteristic peak, the accuracy and reliability of the characteristic spectrum can be effectively improved, thereby helping to improve the accuracy of component detection.
[0095] In some embodiments, the component to be measured includes multiple components, and the characteristic wavelengths include multiple sets of wavelengths corresponding to the multiple components, with each set of wavelengths including at least one wavelength.
[0096] The characteristic peaks may include multiple sets of characteristic peaks corresponding to multiple sets of wavelengths, and each set of characteristic peaks includes at least one peak corresponding to at least one wavelength.
[0097] In these embodiments, for each component, the coated sample is irradiated with a set of characteristic wavelengths corresponding to that component to obtain the corresponding characteristic spectrum. Then, it is determined whether a set of characteristic peaks corresponding to that set of characteristic wavelengths exists in the characteristic spectrum, and the component in the coated sample is detected based on the determination result.
[0098] In some embodiments, when the analyte includes multiple components, the characteristic wavelength range may include multiple wavelength ranges corresponding to multiple sets of wavelengths.
[0099] In these embodiments, light across the entire wavelength range can be filtered using a filter configured with multiple filter components corresponding to multiple wavelength ranges, wherein each of the multiple filter components is configured to allow light within its corresponding wavelength range to pass through. For example, the light across the entire wavelength range can be raw light emitted by a light source (such as a light-emitting element).
[0100] In some embodiments, the rated speed of the motor of the filter is greater than a first specified threshold, and the scanning speed of the filter is greater than a second specified threshold.
[0101] For example, the rated speed of the filter's motor is greater than a first specified threshold (e.g., 5500 rpm) to ensure that light of each characteristic wavelength range can illuminate the sample under test (e.g., a coated sample) in real time. The real-time scanning speed of the filter is greater than a second specified threshold (e.g., 100 scans / second), with a response time between 200 ms and 1000 s. This response time can be dynamically set according to actual filtering requirements.
[0102] In this way, by setting the rated speed and scanning speed of the filter motor to a relatively high value, the time delay in the process of detecting the sample by irradiating it with light in each characteristic wavelength range can be reduced, thereby helping to improve the accuracy and efficiency of component detection.
[0103] Figure 3 A schematic diagram of the structure of a filter according to some embodiments of the present disclosure is shown.
[0104] As some implementation methods, such Figure 3 As shown, the filter can be a filter wheel, and the filter assembly can be a filter sheet. The shape of the filter sheet is designed for easy and secure installation, and is not limited to circular, elliptical, square, rectangular, wedge-shaped, etc. Figure 3 The filter is schematically shown to be circular.
[0105] like Figure 3 As shown, light emitted from light source 1 across the entire wavelength range is reflected by condenser mirror 2 and then filtered by filter 4 on filter wheel 3. High-speed motor 5 drives filter wheel 3 to rotate, so that light emitted from light source 1 can pass through different filters 4 in sequence for filtering, thereby allowing light within different characteristic wavelength ranges to pass through different filters 4.
[0106] Figure 3 The diagram schematically illustrates the light transmission path 7 (also known as optical path 7) after being filtered by a filter 4. For example, a coated sample can be placed on optical path 7. Figure 3 (Not shown) Light with wavelengths within the characteristic wavelength range corresponding to filter 4 passes through the coated sample and interacts with the corresponding components in the coated sample. Then, a signal acquisition device 6 obtains the characteristic spectrum from the light signal reflected by the coated sample. For example, the signal acquisition device 6 is connected to a processing device 9 (e.g., a computer) via a signal transmission line 8. In this way, the characteristic spectrum obtained by the signal acquisition device 6 can be transmitted to the processing device 9 for processing, so as to detect the corresponding components in the coated sample based on the characteristic spectrum.
[0107] It should be noted that light with wavelengths within the characteristic wavelength range corresponding to the filter 4 interacts with the corresponding components after passing through the coated sample. This interaction causes changes in the relevant information of the light signal reflected by the coated sample (such as the intensity of the light signal), thereby forming the corresponding characteristic spectrum.
[0108] In the above embodiments, if it is necessary to detect multiple components, a set of characteristic wavelengths (which may include one or more characteristic wavelengths) and a characteristic wavelength range corresponding to each component can be determined according to the method for determining characteristic wavelengths described above. Then, multiple filter components can be integrated in a filter, and each filter component is configured to allow light within the characteristic wavelength range corresponding to a certain component to pass through, while light outside the characteristic wavelength range does not pass through, so as to suppress interference light signals in other irrelevant wavelength bands.
[0109] In this way, by configuring multiple filter components, multiple characteristic spectra required for detecting multiple components can be acquired simultaneously through a single filter, thereby achieving efficient detection of multiple components.
[0110] The implementation of steps 120 and 130 will be illustrated below with reference to some embodiments.
[0111] In some embodiments, in response to a determination that the analyte is present in the coated sample, the content of the analyte in the coated sample is determined based on the characteristic peak. For example, if the analyte is found to be present in the coated sample, the content of the analyte can be determined using spectral analysis techniques based on the peak value of the characteristic peak.
[0112] For example, the component to be measured may have multiple characteristic peaks. At least one characteristic peak that is free from other interfering or overlapping peaks in the vicinity can be selected for quantitative calculation.
[0113] For example, in response to the judgment result that there is a characteristic peak corresponding to the first characteristic wavelength and / or a characteristic peak corresponding to the second characteristic wavelength, it is determined that glycerol and / or propylene glycol are present in the coated sample, and the content of glycerol and / or propylene glycol is determined according to the characteristic peaks.
[0114] In some embodiments, multiple characteristic spectra corresponding to multiple coated samples with known contents are obtained. A quantitative calculation model for calculating the content of the analyte is established based on the multiple characteristic spectra and the characteristic peaks in each characteristic spectrum, wherein the known contents of the analyte in each coated sample are different. Based on the quantitative calculation model and the characteristic peaks in the characteristic spectra corresponding to the coated sample to be tested, the content of the analyte in the coated sample is determined.
[0115] For example, multiple coated samples containing different known amounts of the analyte (such as glycerol and / or propylene glycol) are prepared, and the characteristic spectra corresponding to each coated sample are obtained. Based on the characteristic peaks in the characteristic spectra of each coated sample and the known amount of the analyte in each coated sample, a quantitative calculation model for the analyte is established.
[0116] For example, the quantitative calculation model is g = k * f + b, where g represents the content of the analyte, f is the peak value of the characteristic peak (such as the absorption signal intensity), and k and b represent the model parameters. The model parameters in this quantitative calculation model are determined based on the characteristic peaks in the characteristic spectrum corresponding to each coated sample and the known content of the analyte in each coated sample.
[0117] For a specific coated sample to be tested, the peak value (response signal) of the characteristic peak in the corresponding characteristic spectrum is substituted into the quantitative calculation model to quantitatively calculate the content of the component to be tested in the coated sample.
[0118] In some embodiments, in response to a negative result, it is determined that the sample to be tested does not exist after coating.
[0119] For example, in response to the determination that there is no characteristic peak corresponding to the first characteristic wavelength, it is determined that glycerol is not present in the coated sample. Similarly, in response to the determination that there is no characteristic peak corresponding to the second characteristic wavelength, it is determined that propylene glycol is not present in the coated sample.
[0120] In some embodiments, the characteristic wavelengths include multiple wavelengths. In these embodiments, it is determined whether there are multiple characteristic peaks in the characteristic spectrum that correspond to these multiple wavelengths, and then the analyte in the coated sample is detected based on the determination result.
[0121] For example, glycerol corresponds to a first characteristic wavelength and multiple third wavelengths. The system determines whether there are multiple characteristic peaks in the characteristic spectrum that correspond to multiple third wavelengths, and whether there is a preset number of such peaks.
[0122] For example, the second characteristic wavelength of propylene glycol includes multiple fourth wavelengths. The system determines whether there are multiple characteristic peaks in the characteristic spectrum that correspond to the multiple fourth wavelengths, and whether there is a preset number of such peaks.
[0123] For example, the preset number is no greater than the total number of characteristic peaks (i.e., the number of peaks corresponding to multiple wavelengths). Suppose a component (e.g., glycerol or propylene glycol) corresponds to 5 characteristic wavelengths, meaning the characteristic wavelengths include 5 wavelengths, and the preset number is set to 3. If at least 3 of the 5 characteristic peaks corresponding to these 5 wavelengths are detected in the characteristic spectrum, the result is "yes," confirming the presence of the component in the coated sample; if fewer than 3 characteristic peaks are detected, the result is "no," confirming the absence of the component in the coated sample.
[0124] In the above embodiments, when there are multiple characteristic wavelengths corresponding to the analyte, the presence of the analyte in the coated sample is determined only if characteristic peaks corresponding to these characteristic wavelengths are detected in the characteristic spectrum, and the number of identified characteristic peaks is not less than a preset number. This reduces the risk of misjudgment that may be introduced by relying solely on a single characteristic peak, and improves the accuracy of component detection.
[0125] The following is combined Figure 4 Further illustrative descriptions are provided for the technical solutions proposed in this disclosure.
[0126] Figure 4 A schematic diagram of a first and second spectrum according to some embodiments of the present disclosure is shown.
[0127] like Figure 4 As shown, Figure 4 The diagram schematically illustrates the first spectrum (also known as the background spectrum) corresponding to the coated substrate, the second spectrum corresponding to component A, and the second spectrum corresponding to component B (also known as the target A spectrum and the target B spectrum). The first spectrum includes a first absorption peak at a first wavelength of 1.45 µm and a first absorption peak at a first wavelength of 1.94 µm. The second wavelengths in the second spectrum corresponding to component A whose difference from the first wavelength (e.g., 1.45 µm, 1.94 µm) is greater than a threshold are identified as candidate wavelengths for component A. Similarly, the second wavelengths in the second spectrum corresponding to component B whose difference from the first wavelength (e.g., 1.45 µm, 1.94 µm) is greater than a threshold are identified as candidate wavelengths for component B.
[0128] Figure 4 The diagram schematically shows that the candidate wavelengths of strong absorption by functional groups in the first spectrum corresponding to component A, which differs from that of the coating substrate, are 1.16 µm, 1.70 µm, and 2.40 µm, corresponding to peaks A1, A2, and A3. Similarly, the candidate wavelengths of strong absorption by functional groups in the first spectrum corresponding to component B, which differs from that of the coating substrate, are 1.79 µm, 2.32 µm, and 2.58 µm, corresponding to peaks B1, B2, and B3.
[0129] Since the difference between the candidate wavelength of 2.40 µm corresponding to component A and the candidate wavelength of 2.32 µm corresponding to component B is less than a preset threshold (e.g., 0.1 µm), neither the candidate wavelength of 2.40 µm corresponding to component A nor the candidate wavelength of 2.32 µm corresponding to component B will be selected as a characteristic wavelength. That is, the characteristic wavelengths corresponding to component A include 1.16 µm and 1.70 µm, and the characteristic wavelengths corresponding to component B include 1.79 µm and 2.58 µm.
[0130] Based on the full width at half maximum (FWHM) of the characteristic peaks detected in the second spectrum of each component, a characteristic wavelength range corresponding to the characteristic wavelength is set, and a filter component (e.g., a narrowband filter) is fabricated to allow light within the characteristic wavelength range corresponding to each component to pass through. The filter component corresponding to each component is mounted on a filter (e.g., ...). Figure 3 (The filter wheel shown). When the filter is illuminated by light emanating from a light source across the entire wavelength range, each filter element on the filter allows only light within its corresponding characteristic wavelength range to pass through.
[0131] A filter with a filter component corresponding to component A and a filter component corresponding to component B is used to filter light across the entire wavelength range, and the filtered light is then used to illuminate the coated sample to obtain a characteristic spectrum.
[0132] exist Figure 4 In the example shown, for instance, if characteristic peaks A1 and A2 are present in the characteristic spectrum, it is determined that component A is present in the coated sample, and the content of component A can be determined based on characteristic peaks A1 and A2. If characteristic peaks B1 and B3 are present in the characteristic spectrum, it is determined that component B is present in the coated sample, and the content of component B can be determined based on characteristic peaks B1 and B3.
[0133] Figure 5 A block diagram of a component detection apparatus according to some embodiments of the present disclosure is shown.
[0134] like Figure 5 As shown, the component detection device 500 includes an acquisition module 501, a judgment module 502, and a detection module 503.
[0135] The acquisition module 501 can be configured to irradiate a coated sample made by adding a coating liquid to a coated substrate with light of a characteristic wavelength corresponding to the component to be measured, so as to obtain the characteristic spectrum corresponding to the coated sample.
[0136] The judgment module 502 can be configured to determine whether there is a characteristic peak in the characteristic spectrum that corresponds to the characteristic wavelength.
[0137] The detection module 503 can be configured to detect the analyte in the coated sample based on the judgment result.
[0138] In some embodiments, the component detection device 500 may further include an acquisition module and a determination module. Figure 5 (Not shown). The acquisition module can be configured to acquire a first spectrum corresponding to the coated substrate and a second spectrum corresponding to the analyte. The first spectrum includes multiple first absorption peaks and a first wavelength corresponding to each of the multiple first absorption peaks. The second spectrum includes multiple second absorption peaks and a second wavelength corresponding to each of the multiple second absorption peaks. The determination module can be configured to determine a characteristic wavelength based on the difference between the first wavelength and the second wavelength.
[0139] In some embodiments, the determining module is configured to determine a second wavelength among a plurality of second wavelengths whose difference from the first wavelength is greater than a threshold as a candidate wavelength corresponding to each component; and to determine a characteristic wavelength corresponding to each component based on the difference between the candidate wavelengths corresponding to different components.
[0140] In some embodiments, the multiple components include glycerol and propylene glycol, and the difference between the first characteristic wavelength corresponding to glycerol and the second characteristic wavelength corresponding to propylene glycol is greater than a preset threshold.
[0141] In some embodiments, the characteristic wavelengths include multiple wavelengths, and the judgment module 502 can be configured to determine whether there are multiple characteristic peaks in the characteristic spectrum that correspond to multiple wavelengths, not less than a preset number.
[0142] In some embodiments, the first characteristic wavelength includes a plurality of third wavelengths, and the second characteristic wavelength includes a plurality of fourth wavelengths.
[0143] The judgment module 502 can be configured to judge whether there are multiple characteristic peaks in the characteristic spectrum that correspond to multiple third wavelengths, not less than a preset number; and / or to judge whether there are multiple characteristic peaks in the characteristic spectrum that correspond to multiple fourth wavelengths, not less than a preset number.
[0144] In some embodiments, the detection module 503 can be configured to determine that the analyte exists in the coated sample in response to a yes result, and to determine the content of the analyte based on the characteristic peak; and to determine that the analyte does not exist in the coated sample in response to a no result.
[0145] In some embodiments, the detection module 503 may be configured to determine that glycerol and / or propylene glycol are present in the coated sample in response to the determination that a characteristic peak corresponding to the first characteristic wavelength and / or a characteristic peak corresponding to the second characteristic wavelength is present, and to determine the content of glycerol and / or propylene glycol based on the characteristic peaks; and to determine that glycerol and propylene glycol are not present in the coated sample in response to the determination that a characteristic peak corresponding to the first characteristic wavelength and a characteristic peak corresponding to the second characteristic wavelength are not present.
[0146] In some embodiments, the obtaining module 501 can be configured to set a characteristic wavelength range corresponding to the characteristic wavelength according to the half-peak width of the characteristic peak; allowing light with wavelengths within the characteristic wavelength range to irradiate the coated sample.
[0147] In some embodiments, the size of the characteristic wavelength range is inversely correlated with the full width at half maximum (FWHM) of the characteristic peak.
[0148] In some embodiments, the component to be measured includes multiple components, the characteristic wavelength includes multiple sets of wavelengths corresponding to the multiple components, and the characteristic wavelength range includes multiple wavelength ranges corresponding to the multiple sets of wavelengths.
[0149] The obtaining module 501 can be configured to filter light across the entire wavelength range using a filter having multiple filter components corresponding to multiple wavelength ranges, wherein each of the multiple filter components is configured to allow light within the wavelength range corresponding to each filter component to pass through.
[0150] In some embodiments, the rated speed of the motor of the filter is greater than a first specified threshold, and the scanning speed of the filter is greater than a second specified threshold.
[0151] Figure 6 A block diagram of a component detection apparatus according to other embodiments of the present disclosure is shown.
[0152] like Figure 6 As shown, the component detection device 600 of this embodiment includes a memory 601 and a processor 602 coupled to the memory 601. The processor 602 is configured to execute the component detection method or wavelength determination method in any embodiment of this disclosure based on instructions stored in the memory 601.
[0153] The memory 601 may include, for example, system memory, fixed non-volatile storage media, etc. The system memory may store, for example, an operating system, application programs, a boot loader, a database, and other programs.
[0154] Figure 7 A block diagram of a component detection apparatus according to some embodiments of the present disclosure is shown.
[0155] like Figure 7 As shown, the component detection device 700 of this embodiment includes a memory 701 and a processor 702 coupled to the memory 701. The processor 702 is configured to execute the component detection method or wavelength determination method in any of the foregoing embodiments based on instructions stored in the memory 701.
[0156] The memory 701 may include, for example, system memory, fixed non-volatile storage media, etc. The system memory stores, for example, the operating system, application programs, boot loader, and other programs.
[0157] The electronic device 700 may also include an input / output interface 703, a network interface 704, and a storage interface 705. These interfaces 703, 704, and 705, as well as the memory 701 and processor 702, can be connected, for example, via a bus 706. Specifically, the input / output interface 703 provides a connection interface for input / output devices such as monitors, mice, keyboards, touchscreens, microphones, and speakers. The network interface 704 provides a connection interface for various networked devices. The storage interface 705 provides a connection interface for external storage devices such as SD cards and USB flash drives.
[0158] This disclosure also provides a component detection system, including: a component detection device (e.g., component detection device 500 / 600 / 700) from any of the above embodiments and a filter. The filter is configured to allow light of a characteristic wavelength corresponding to the component to be measured to illuminate a coated sample prepared by adding a coating liquid to a coated substrate.
[0159] In some embodiments, the filter is configured with a plurality of filter components corresponding to a plurality of wavelength ranges, each of the plurality of filter components being configured to allow light within a wavelength range corresponding to each filter component to pass through.
[0160] This disclosure also provides a computer-readable storage medium including computer program instructions that, when executed by a processor, implement the component detection method of any of the above embodiments.
[0161] This disclosure also provides a computer program product, including a computer program that, when executed by a processor, implements the component detection method of any of the above embodiments.
[0162] Those skilled in the art will understand that embodiments of this disclosure can be provided as methods, systems, or computer program products. Therefore, this disclosure can take the form of a completely hardware embodiment, a completely software embodiment, or an embodiment combining software and hardware aspects. Furthermore, this disclosure can take the form of a computer program product embodied on one or more computer-usable non-transitory storage media (including, but not limited to, disk storage, CD-ROM, optical storage, etc.) containing computer-usable program code.
[0163] The component detection technology solution according to this disclosure has now been described in detail. To avoid obscuring the concept of this disclosure, some details known in the art have not been described. Those skilled in the art can fully understand how to implement the disclosed technology solution based on the above description.
[0164] The methods and systems of this disclosure may be implemented in many ways. For example, they may be implemented by software, hardware, firmware, or any combination of software, hardware, and firmware. The above-described order of steps for the methods is for illustrative purposes only, and the steps of the methods of this disclosure are not limited to the specific order described above unless otherwise specifically stated. Furthermore, in some embodiments, this disclosure may also be implemented as a program recorded on a recording medium, the program including machine-readable instructions for implementing the methods according to this disclosure. Thus, this disclosure also covers recording media storing programs for performing the methods according to this disclosure.
[0165] While specific embodiments of this disclosure have been described in detail by way of example, those skilled in the art should understand that the examples are for illustrative purposes only and not intended to limit the scope of this disclosure. Those skilled in the art should understand that modifications can be made to the above embodiments without departing from the scope and spirit of this disclosure. The scope of this disclosure is defined by the appended claims.
Claims
1. A method for detecting the composition of a coated sample, comprising: The characteristic spectrum of the coated sample is obtained by irradiating the coated sample with light of a characteristic wavelength corresponding to the component to be tested by adding a coating liquid to a coated substrate. Determine whether a characteristic peak corresponding to the characteristic wavelength exists in the characteristic spectrum; Based on the judgment result, the analyte in the coated sample is detected, wherein the characteristic wavelength is determined as follows: Obtain a first spectrum corresponding to the coated substrate and a second spectrum corresponding to the component to be measured. The first spectrum includes a plurality of first absorption peaks and a first wavelength corresponding to each of the plurality of first absorption peaks. The second spectrum includes a plurality of second absorption peaks and a second wavelength corresponding to each of the plurality of second absorption peaks. Based on the first difference between the first wavelength and the second wavelength, the characteristic wavelength corresponding to the analyte is determined from the second spectrum.
2. The component detection method according to claim 1, wherein, The analyte includes multiple components, and determining the characteristic wavelength corresponding to each analyte from the second spectrum based on the first difference between the first wavelength and the second wavelength includes: The second wavelength among the plurality of second wavelengths whose difference from the first wavelength is greater than a threshold is determined as the candidate wavelength corresponding to each component; Based on the differences between the candidate wavelengths corresponding to different components, the characteristic wavelength corresponding to each component is determined.
3. The component detection method according to claim 2, wherein, The multiple components include glycerin and propylene glycol, and the difference between the first characteristic wavelength corresponding to glycerin and the second characteristic wavelength corresponding to propylene glycol is greater than a preset threshold.
4. The component detection method according to claim 3, wherein, The first characteristic wavelength includes multiple third wavelengths, and the second characteristic wavelength includes multiple fourth wavelengths. The step of determining whether a characteristic peak corresponding to the characteristic wavelength exists in the characteristic spectrum includes: Determine whether the characteristic spectrum contains at least a preset number of characteristic peaks corresponding to the plurality of third wavelengths; and / or Determine whether there are multiple characteristic peaks in the characteristic spectrum that correspond to the multiple fourth wavelengths, not less than the preset number.
5. The component detection method according to claim 4, wherein, The step of determining whether the analyte exists in the coated sample based on the result of the judgment includes: In response to the determination that a characteristic peak corresponding to the first characteristic wavelength and / or a characteristic peak corresponding to the second characteristic wavelength exists, it is determined that the glycerol and / or the propylene glycol are present in the coated sample, and the content of the glycerol and / or the propylene glycol is determined according to the characteristic peak; In response to the determination that there is no characteristic peak corresponding to the first characteristic wavelength and no characteristic peak corresponding to the second characteristic wavelength, it is determined that the glycerol and propylene glycol are not present in the coated sample.
6. The component detection method according to any one of claims 1-5, wherein, The coated sample, prepared by adding a coating liquid to a coated substrate, is irradiated with light of a characteristic wavelength corresponding to the component to be tested. The characteristic wavelength range corresponding to the characteristic wavelength is set according to the half-peak width of the characteristic peak; The coated sample is allowed to be irradiated with light whose wavelength is within the characteristic wavelength range.
7. The component detection method according to claim 6, wherein, The size of the characteristic wavelength range is inversely correlated with the half-peak height and width of the characteristic peak.
8. The component detection method according to claim 6, wherein, The analyte includes multiple components, the characteristic wavelength includes multiple sets of wavelengths corresponding to the multiple components, and the characteristic wavelength range includes multiple wavelength ranges corresponding to the multiple sets of wavelengths. The irradiation of the coated sample by light with a wavelength within the characteristic wavelength range includes: A filter with multiple filter components corresponding to the multiple wavelength ranges is used to filter light across the entire wavelength range, wherein each of the multiple filter components is configured to allow light within the wavelength range corresponding to each filter component to pass through.
9. The component detection method according to claim 8, wherein, The rated speed of the motor of the filter is greater than a first specified threshold, and the scanning speed of the filter is greater than a second specified threshold.
10. A device for detecting the composition of a coated sample, comprising: The acquisition module is configured to irradiate a coated sample prepared by adding a coating liquid to a coated substrate with light of a characteristic wavelength corresponding to the component to be measured, so as to obtain the characteristic spectrum corresponding to the coated sample. The judgment module is configured to determine whether there is a characteristic peak in the characteristic spectrum that corresponds to the characteristic wavelength; The detection module is configured to detect the analyte in the coated sample based on the result of the judgment. The component detection device further includes an acquisition module and a determination module. The acquisition module is configured to acquire a first spectrum corresponding to the coating substrate and a second spectrum corresponding to the component to be measured. The first spectrum includes a plurality of first absorption peaks and a first wavelength corresponding to each of the plurality of first absorption peaks. The second spectrum includes a plurality of second absorption peaks and a second wavelength corresponding to each of the plurality of second absorption peaks. The determining module is configured to determine the characteristic wavelength corresponding to the analyte from the second spectrum based on a first difference between the first wavelength and the second wavelength.
11. A device for detecting the composition of a coated sample, comprising: Memory; and A processor coupled to the memory, the processor being configured to execute the component detection method of any one of claims 1-9 based on instructions stored in the memory.
12. A system for detecting the composition of a coated sample, comprising: The component detection device according to claim 10 or 11; as well as A filter is configured to allow light of a characteristic wavelength corresponding to the component to be measured to illuminate a coated sample prepared by adding a coating liquid to a coated substrate.
13. The component detection system according to claim 12, wherein, The filter is configured with multiple filter components corresponding to multiple wavelength ranges. Each of the plurality of filter components is configured to allow light within a wavelength range corresponding to each filter component to pass through.
14. A computer-readable storage medium having stored thereon computer instructions that, when executed by a processor, implement the component detection method according to any one of claims 1-9.
15. A computer program product comprising instructions that, when executed by a processor, cause the processor to perform the component detection method according to any one of claims 1-9.