# Lesson 27 Flashcards

Click a question to reveal the answer.

<div data-flashcards data-deck="b3l27"></div>

<details>
<summary><strong>1. In the L25 rule <span class="math notranslate nohighlight">\(\sigma = A_\text{geo}\times\Gamma\times D\)</span>, which knob does RAM attack?</strong></summary>
<div class="card-answer"><p>Reflectivity <span class="math notranslate nohighlight">\(\Gamma\)</span> — RAM converts incident wave energy to heat instead of echo. Shaping owns directivity <span class="math notranslate nohighlight">\(D\)</span>.</p></div>
</details>

<details>
<summary><strong>2. Where on an airframe does RAM go, and why there?</strong></summary>
<div class="card-answer"><p>Where shaping ran out of leverage: edges, inlet lips, seams, and cavity throats. Shaping buys the orders of magnitude; RAM buys the stubborn last dBs.</p></div>
</details>

<details>
<summary><strong>3. What is a Salisbury screen?</strong></summary>
<div class="card-answer"><p>A resistive sheet of about <span class="math notranslate nohighlight">\(377\ \Omega/\text{sq}\)</span> spaced a quarter-wavelength above a metal ground plane, backed by a shorted air spacer. The sheet is matched to the impedance of free space, <span class="math notranslate nohighlight">\(Z_0 = 377\ \Omega\)</span>.</p></div>
</details>

<details>
<summary><strong>4. Why does a quarter-wave absorber null the echo at its design frequency?</strong></summary>
<div class="card-answer"><p>The wave reflecting off the back skin travels an extra half-wavelength round trip through the <span class="math notranslate nohighlight">\(d = \lambda_0/4\)</span> spacer, so it returns <span class="math notranslate nohighlight">\(180^\circ\)</span> out of phase with the front reflection. The two cancel at <span class="math notranslate nohighlight">\(f_0\)</span>.</p></div>
</details>

<details>
<summary><strong>5. State the quarter-wave sizing formula and the depths it gives at 10 GHz and 1 GHz.</strong></summary>
<div class="card-answer"><p><span class="math notranslate nohighlight">\(d = c/(4 f_0)\)</span>: <span class="math notranslate nohighlight">\(7.5\)</span> mm at 10 GHz, <span class="math notranslate nohighlight">\(75\)</span> mm at 1 GHz. Low-frequency RAM gets thick, hence heavy.</p></div>
</details>

<details>
<summary><strong>6. At what frequencies do a quarter-wave screen's nulls recur, and what is its <span class="math notranslate nohighlight">\(-10\)</span> dB bandwidth?</strong></summary>
<div class="card-answer"><p>Nulls recur at the odd harmonics <span class="math notranslate nohighlight">\(f_0, 3f_0, 5f_0\)</span> (where <span class="math notranslate nohighlight">\(\tan(\beta d)\to\infty\)</span>). The <span class="math notranslate nohighlight">\(-10\)</span> dB (90% absorbed) bandwidth is about <span class="math notranslate nohighlight">\(\pm37\%\)</span> of <span class="math notranslate nohighlight">\(f_0\)</span>.</p></div>
</details>

<details>
<summary><strong>7. Why do practical broadband LO treatments avoid a single resonant layer?</strong></summary>
<div class="card-answer"><p>One notch defends one band while an IADS spans VHF to <span class="math notranslate nohighlight">\(K_u\)</span>. Bandwidth has to be bought with thickness, added loss mechanisms, and weight — no single resonant layer covers the whole threat spectrum.</p></div>
</details>

<details>
<summary><strong>8. Name three broadband RAM families and their trade-offs.</strong></summary>
<div class="card-answer"><p>Jaumann (stacked graded resistive sheets — wider notch but thicker); magnetic / iron-loaded (thin and broadband but heavy, the classic LO skin); structural RAM/RAS (absorber built into load-bearing skins and edge wedges). Bandwidth, thickness, weight — pick two.</p></div>
</details>

<details>
<summary><strong>9. How does polarization betray an LO aircraft?</strong></summary>
<div class="card-answer"><p>Long conductors and edges scatter strongest in the polarization parallel to them, and trihedral corners flip circular-polarization sense — tells that a cross-polarized (polarization-diverse) radar can deliberately flag.</p></div>
</details>

<details>
<summary><strong>10. What is the design response to polarization tells?</strong></summary>
<div class="card-answer"><p>Avoid long straight conductors, and orient or serrate the discontinuities you cannot remove so no single polarization finds a clean target — planform alignment's quiet cousin.</p></div>
</details>

<details>
<summary><strong>11. State the intercept asymmetry with its range dependence.</strong></summary>
<div class="card-answer"><p>A passive RWR hears the emitter one-way, <span class="math notranslate nohighlight">\(P_\text{RWR}\propto 1/R^2\)</span>; the radar needs the two-way echo, <span class="math notranslate nohighlight">\(P_\text{echo}\propto \sigma/R^4\)</span> with small <span class="math notranslate nohighlight">\(\sigma\)</span>. The listener detects the transmission far beyond the radar's own detection range.</p></div>
</details>

<details>
<summary><strong>12. Why is EMCON a survivability discipline for an LO aircraft?</strong></summary>
<div class="card-answer"><p>No coating absorbs a wave you chose to transmit. The one-way asymmetry means the enemy hears your radar before you see their echo, so you must radiate seldom and smart — whoever transmits first, telegraphs first.</p></div>
</details>

<details>
<summary><strong>13. What LPI techniques fight the intercept asymmetry?</strong></summary>
<div class="card-answer"><p>Power management, frequency agility, and wide instantaneous bandwidth at low peak power — or refuse the duel and stay passive using an infrared search-and-track (L23) and offboard cues.</p></div>
</details>

<details>
<summary><strong>14. In the demo, what happens when the spacer depth doubles from 7.5 mm to 15 mm?</strong></summary>
<div class="card-answer"><p>The <span class="math notranslate nohighlight">\(X\)</span>-band null moves; nulls appear at 5 and 15 GHz (odd harmonics), handing <span class="math notranslate nohighlight">\(X\)</span>-band back where fire-control threats live. Coverage stays about 47% of 2–18 GHz — broader is not free.</p></div>
</details>

<details>
<summary><strong>15. What is the one-line takeaway about resonant RAM?</strong></summary>
<div class="card-answer"><p>A resonant absorber is a promise kept at exactly one frequency; broadband absorption costs thickness and weight.</p></div>
</details>
