★ Must-know
📐 Formula — For a capacitor charged by a constant current I, the charge and voltage are related by and when the initial voltage is zero.
Further detail
📐 Formula — The voltage across a resistor carrying a constant current is .
Constant current → linearly increasing capacitor voltage
📐 Formula — A real cell is modeled by , where E is its electromotive force and rI is the internal voltage drop.
Ideal voltage fixes E, whereas a real cell loses rI
★ Must-know
📐 Formula — For a charging circuit with resistances R and R1, the charge satisfies .
📐 Formula — The time constant and forcing constant are and .
📐 Formula — For an initially uncharged capacitor, the charge is .
Further detail
📐 Formula — The voltage across R1 during charging is .
Circuit law → differential equation → exponential solution
★ Must-know
📐 Formula — When the capacitor reaches 99.9% of its final charge, the charging duration is approximately .
Further detail
The tangent method gives , from which the adjustable resistance is .
Using the initial resistor voltage gives and then the source emf is .
★ Must-know
📐 Formula — The electric energy stored in a capacitor is .
📐 Formula — With constant current I and an initially uncharged capacitor, the stored energy is .
📐 Formula — For a parallel-plate capacitor, the capacitance is and the relative permittivity is .
Further detail
Charge q → voltage uC → energy Ee
★ Must-know
📐 Formula — A capacitor charged by a constant current satisfies , with opposite charges on its two plates: one plate carries +q and the other carries −q.
Further detail
📐 Formula — For the capacitor model used in the course, the dielectric relation is , where S is plate area and e is dielectric thickness.
📌 The squeeze theorem applies when a function is bounded between two functions having the same limit.
★ Must-know
📌 For a piecewise function, continuity at a joining point is checked by comparing the left-hand limit, right-hand limit, and function value.
📌 To prove existence and uniqueness of a solution of an equation, continuity provides existence on an interval and strict monotonicity provides uniqueness.
Further detail
Bounds or equivalent forms → limit → graphical interpretation
★ Must-know
📐 Formula — The complex identity converts a sum into exponential form.
Further detail
📌 If is real, the vectors MA and MB are collinear in direction, and the course uses this relation to establish that triangle ABM is right-angled at M.
Rotated points on circles form a right triangle and a rhombus
★ Must-know
📌 Testosterone exerts negative feedback on the hypothalamo-pituitary complex, helping regulate gonadostimulin secretion.
Further detail
📌 A vesicle seminalis is an accessory exocrine gland that contributes seminal fluid to semen, not an endocrine gland.
Hypothalamus → pituitary → testis
★ Must-know
Spermiogenesis is the differentiation of spermatids into spermatozoa and occurs in the seminiferous tubule, not in the epididymis.
Spermatogenesis is continuous and produces cells with equal cytoplasmic divisions, whereas oogenesis is discontinuous and involves unequal cytoplasmic division.
Castration of a pubescent animal causes gonadostimulin hypersecretion and atrophy of the accessory glands because testicular negative feedback is removed.
Further detail
Spermatogenesis is continuous and equal, whereas oogenesis is discontinuous and unequal
★ Must-know
📌 A response to discontinuous GnRH injection indicates that the hypothalamic signal was deficient but the pituitary-testis pathway can respond.
Further detail
The normal reference ranges given are LH 1–9 mU/L and testosterone 10–30 nmol/L.
To diagnose infertility experimentally, compare germ-cell DNA content and cell numbers, test the response to GnRH, and localize the defect from the hormone results.
GnRH injection → LH response → testosterone response → lesion localization
Ideal and real generators
| Generator | Controlled quantity | Relation |
|---|---|---|
| Ideal current generator | Current | I is constant |
| Ideal voltage generator | Voltage | uPN=E is constant |
| Real cell | Terminal voltage | uPN=E−rI |
Test your knowledge on Capacitors, Limits, and Reproduction with 23 multiple-choice questions with detailed corrections.
1. Regarding capacitor charging fundamentals, which statements are correct?
2. A constant current passes through a resistor and charges a capacitor; which statements are correct?
Memorize the key concepts of Capacitors, Limits, and Reproduction with 67 interactive flashcards.
How is charge related to current and time for a capacitor charged by constant current?
Charge equals current multiplied by time, .
What is the voltage across a capacitor charged by constant current with zero initial voltage?
Voltage is .
What is the voltage across a resistor carrying a constant current?
Voltage equals resistance times current, .
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