PDN Target Impedance
Impedance of a real capacitor bank against its target, and the frequency above which more capacitors stop helping.
هذه الصفحة غير مترجمة بالكامل بعد. الأجزاء غير المترجمة معروضة بالإنجليزية.
المدخلات
ملف اللوحةFills Dielectric constant between the planes from your board profile.
| Group | Count | C (F) | ESR (Ω) | Part ESL (H) | Distance to load (m) | حذف الصف |
|---|---|---|---|---|---|---|
| 100 nF | 20 mΩ | 600 pH | 3 mm | |||
| 4.7 µF | 8 mΩ | 1 nH | 12 mm | |||
| 100 µF | 10 mΩ | 2.5 nH | 30 mm |
النتائج
المعيار: peak |Z| ≤ Ztarget = 2.7 mΩ from 1 kHz to 72.29 MHz, at the worst-case 2 nH mounting inductance
at 1 MHz
كل النتائج (6)
usually negligible unless this is a buried-capacitance core
the optimistic case, for comparison
vias only. It leaves out the pad and capacitor terminals, often the larger part, so do not use it as the mounting inductance.
This is the impedance at the capacitor pads. Above the package resonance the die sees package and on-die capacitance, which this model leaves out.
Ztarget = VDD × ripple ÷ ΔI = 2.7 mΩ. It is a heuristic that assumes a worst-case step with a flat current spectrum. Meeting it is necessary but does not guarantee the ripple specification.
The verdict covers 1 kHz to 72.29 MHz, a tenth of the first plane cavity mode (722.9 MHz). The factor of ten is a chosen margin, not a published limit: the plane stops acting as a lumped capacitor well before that mode.
The curve peaks higher, at 12 Ω near 319.9 MHz, but that value is a model artefact. The plane is modelled as a lossless capacitor; on a real board, plane loss sets how high it goes. Read the shape, not the value.
Below the 50 kHz loop bandwidth, the regulator's feedback gives a lower impedance than modelled, so the curve is conservative there.
Results use the worst-case mounting inductance, 2 nH. At the typical 800 pH the peak would be 2.45 Ω. Ordinary pads and vias span roughly 0.3 to 2 nH.
| Group | Count | C after derating | Group ESR | Group L | Spreading L | Branch resonance |
|---|---|---|---|---|---|---|
| Local 0402 100 nF | 20 | 1.2 µF | 1 mΩ | 190 pH | 59.9 pH | 10.5 MHz |
| Mid 0805 4.7 µF | 8 | 22.6 µF | 1 mΩ | 463 pH | 87.6 pH | 1.56 MHz |
| Bulk 100 µF polymer | 2 | 120 µF | 5 mΩ | 2.36 nH | 106 pH | 299 kHz |
| Count in the first group | Peak |Z| | f_max |
|---|---|---|
| 20 | 2.44 Ω | 3.37 MHz |
| 40 | 2.31 Ω | 4.55 MHz |
| 80 | 2.08 Ω | 5.76 MHz |
| 160 | 2.56 Ω | 6.75 MHz |
| → ∞ | — | 8.28 MHz |
إلى أي حد نعرف هذا الرقم
- Smith et al. (1999)
- Smith and Bogatin
Smith, Anderson, Forehand, Pelc and Roy, Power distribution system design methodology and capacitor selection for modern CMOS technology, IEEE Transactions on Advanced Packaging (1999) المعادلة
Smith and Bogatin, Principles of Power Integrity for PDN Design Simplified المعادلة
- Plane pair separation 0.005 mm to 2 mm
Plane pair separation The spreading-inductance formula assumes the plane separation is much smaller than the distance from each group to the load. Outside this range it does not apply.
Mounting inductance spans roughly 0.3 to 2 nH for ordinary pads and vias and sets the answer above about 30 MHz, so the verdict uses the worst-case value.
عملياً يهيمن على عدم اليقين مدخل واحد: Typical mounting inductance per part. ضيّقه يضِق معه الجواب.
7 حالات في هذا الموقع تقارن هذه الحاسبة بأرقام حُسبت من دون كودها. اطّلع على الحساب.
هذه أداة مساعدة للتصميم. يبقى المهندس مسؤولاً عن التصميم وعن قراءة المرجع القياسي نفسه حيث يهم ذلك.
المسح البارامتري
غيّر مدخلاً واحداً على مدى، وشاهد الإجابة والحكم والهامش عند كل خطوة، جدولاً ومنحنى.Proأسوأ الحالات
أضف التفاوتات إلى المدخلات لتحصل على النطاق المضمون حول الإجابة الاسمية، لا الحالة النموذجية وحدها.Proالمقطع العرضي
المبدأ
A power distribution network is judged by its impedance seen from the load, across frequency, against a target: the allowed rail deviation divided by the current step. Each capacitor group sits behind its own mounting and spreading inductance. Between any two groups there is an anti-resonance that more of the same part will not remove.
- the impedance the rail deviation and the current step allow
- pad, via pair and the loop back to the plane, per part
- inductance of the radial path from a group to the load
- all the branch inductances in parallel: the high-frequency floor
- the frequency at which that floor reaches the target
- first plane cavity mode; the lumped model does not apply above it
- capacitance of the plane pair itself
- via barrel radius, the inner limit of the radial spread
تفاصيل إضافية
When to stop adding capacitors
A 5 mΩ target with a 50 pH floor gives fmax = 15.9 MHz. Above fmax, only package and on-die capacitance help. The diminishing-returns table shows where more parts stop paying.
N in parallel applies only within a group
N parts divide R and L and multiply C only when they share a mount and a distance. Groups at different distances see different spreading inductance, which is why an anti-resonance appears between them.
Not modelled
Mutual inductance between adjacent mounts, and ESR change with frequency and temperature. DC-bias derating is the factor you enter from the part's own curve.
إصدار المحرك 1.18.3