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STM32F373C8 Datasheet(PDF) 74 Page - STMicroelectronics |
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STM32F373C8 Datasheet(HTML) 74 Page - STMicroelectronics |
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74 / 131 page ![]() Electrical characteristics STM32F37xxx 74/131 DocID022691 Rev 4 Figure 13. Low-speed external clock source AC timing diagram High-speed external clock generated from a crystal/ceramic resonator The high-speed external (HSE) clock can be supplied with a 4 to 32 MHz crystal/ceramic resonator oscillator. All the information given in this paragraph are based on design simulation results obtained with typical external components specified in Table 40. In the application, the resonator and the load capacitors have to be placed as close as possible to the oscillator pins in order to minimize output distortion and startup stabilization time. Refer to the crystal resonator manufacturer for more details on the resonator characteristics (frequency, package, accuracy). Table 40. HSE oscillator characteristics Symbol Parameter Conditions(1) 1. Resonator characteristics given by the crystal/ceramic resonator manufacturer. Min(2) Typ Max(2) 2. Guaranteed by design, not tested in production. Unit fOSC_IN Oscillator frequency 4 8 32 MHz RF Feedback resistor - 200 - k Ω IDD HSE current consumption During startup(3) 3. This consumption level occurs during the first 2/3 of the tSU(HSE) startup time -- 8.5 mA VDD = 3.3 V, Rm= 30 Ω, CL= 10 pF@8 MHz -0.4 - VDD = 3.3 V, Rm= 45 Ω, CL= 10 pF@8 MHz -0.5 - VDD = 3.3 V, Rm= 30 Ω, CL=5 pF@32 MHz -0.8 - VDD = 3.3 V, Rm= 30 Ω, CL= 10 pF@32 MHz -1 - VDD = 3.3 V, Rm= 30 Ω, CL= 20 pF@32 MHz -1.5 - gm Oscillator transconductance Startup 10 - - mA/V tSU(HSE)(4) 4. tSU(HSE) is the startup time measured from the moment it is enabled (by software) to a stabilized 8 MHz oscillation is reached. This value is measured for a standard crystal resonator and it can vary significantly with the crystal manufacturer Startup time VDD is stabilized - 2 - ms MS19215V2 VLSEH tf(LSE) 90% 10% TLSE t tr(LSE) VLSEL tW(LSEH) tW(LSEL) |
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