Intersil KAD5514P-21Q48
- KAD5514P-21Q48
- Intersil
- IC ADC 14BIT 210MSPS SGL 48-QFN
- Data Acquisition - Analog to Digital Converters (ADC)
- KAD5514P-21Q48 Datasheet
- 48-VFQFN Exposed Pad
- 48-VFQFN Exposed Pad
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What is KAD5514P-21Q48
Intersil Part Number KAD5514P-21Q48(Data Acquisition - Analog to Digital Converters (ADC)), developed and manufactured by Intersil, distributed globally by Jinftry. We distribute various electronic components from world-renowned brands and provide one-stop services, making us a trusted global electronic component distributor.
KAD5514P-21Q48 is one of the part numbers distributed by Jinftry, and you can learn about its specifications/configurations, package/case, Datasheet, and other information here. Electronic components are affected by supply and demand, and prices fluctuate frequently. If you have a demand, please do not hesitate to send us an RFQ or email us immediately [email protected] Please inquire about the real-time unit price, Data Code, Lead time, payment terms, and any other information you would like to know. We will do our best to provide you with a quotation and reply as soon as possible.
KAD5514P-21Q48 Specifications
- Part NumberKAD5514P-21Q48
- CategoryData Acquisition - Analog to Digital Converters (ADC)
- ManufacturerIntersil
- DescriptionIC ADC 14BIT 210MSPS SGL 48-QFN
- Package48-VFQFN Exposed Pad
- Series-
- Operating Temperature-40°C ~ 85°C
- Package / Case48-VFQFN Exposed Pad
- Supplier Device Package48-QFN (7x7)
- Reference TypeInternal
- Sampling Rate (Per Second)210M
- Data InterfaceLVDS - Parallel, Parallel
- Number of Bits14
- Voltage - Supply, Analog1.7 V ~ 1.9 V
- Voltage - Supply, Digital1.7 V ~ 1.9 V
- Number of Inputs1
- Input TypeDifferential
- ConfigurationS/H-ADC
- Ratio - S/H:ADC1:1
- Number of A/D Converters1
- ArchitectureSAR
Application of KAD5514P-21Q48
KAD5514P-21Q48 Datasheet
KAD5514P-21Q48 Datasheet , 48-VFQFN Exposed Pad,-40°C ~ 85°C,48-VFQFN Exposed Pad,48-QFN (7x7),Internal,210M,LVDS - Parallel, Parallel,14,1.7 V ~ 1.9 V,1.7 V ~ 1.9 V,1,Differential,S/H-ADC,1:1,1,SAR
KAD5514P-21Q48 Classification
Data Acquisition - Analog to Digital Converters (ADC)
FAQ about Data Acquisition - Analog to Digital Converters (ADC)
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1. How does ADC convert analog to digital?
The technology that converts analog sound signals into digital signals is called analog-to-digital conversion technology (Analog to Digital Converter, referred to as ADC). The function of ADC is to convert continuously changing analog signals into discrete digital signals. The process of analog-to-digital conversion can be completed by steps such as sampling, holding, quantization, and encoding.
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2. How to convert analog to digital without ADC?
Analog to digital conversion without ADC can be achieved through PWM circuit. This method is suitable for those main control chips without built-in ADC, which needs to be solved by two GPIOs and an operational amplifier. The basic principle is to use an integral circuit to convert the PWM wave into a smooth DC voltage, and then continuously adjust the PWM duty cycle by comparing it with the voltage to be measured until the output of the comparator changes from 0 to 1, and record the current PWM duty cycle, thereby realizing the measurement of the analog voltage.
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3. What is the principle of analog-to-digital converters?
The working principle of the analog-to-digital converter (ADC) is to convert analog signals into digital signals through four processes: sampling, holding, quantization, and encoding.
The main components of the analog-to-digital converter include samplers and quantizers, which work together to convert continuous analog signals into discrete digital signals. This process requires a reference analog quantity as a standard, and the maximum convertible signal size is usually used as the reference standard. The basic principles of the analog-to-digital converter can be summarized as follows:
Sampling: The analog-to-digital converter first samples the input analog signal through a sampling circuit, that is, discretizes the analog signal on the time axis.
Holding: The sampled signal is held by the holding circuit for the next quantization and encoding process.
Quantization: The quantization process is to divide the amplitude of the sampled and held analog signal into a finite number of le
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