Two liquids A and B have $\theta_{\mathrm{A}}$ and $\theta_{\mathrm{B}}$ as contact angles in a capillary tube. If $K=\cos \theta_{\mathrm{A}} / \cos \theta_{\mathrm{B}}$, then identify the correct statement:
Two liquids A and B have $\theta_{\mathrm{A}}$ and $\theta_{\mathrm{B}}$ as contact angles in a capillary tube. If $K=\cos \theta_{\mathrm{A}} / \cos \theta_{\mathrm{B}}$, then identify the correct statement:
Show Hint
- K is negative, then liquid A and liquid B have convex meniscus.
- K is negative, then liquid A and liquid B have concave meniscus.
- K is negative, then liquid A has concave meniscus and liquid B has convex meniscus.
- K is zero, then liquid A has convex meniscus and liquid B has concave meniscus.
The Correct Option is C
Solution and Explanation
We are given two liquids A and B having contact angles \( \theta_A \) and \( \theta_B \) in a capillary tube. The ratio is defined as:
\[ K = \frac{\cos \theta_A}{\cos \theta_B} \]
We need to determine which statement about the nature of their meniscus (concave or convex) is correct when \( K \) is negative or zero.
Concept Used:
The shape of a meniscus depends on the contact angle \( \theta \):
- If \( \theta < 90^\circ \), then \( \cos \theta > 0 \) → concave meniscus (liquid wets the surface).
- If \( \theta > 90^\circ \), then \( \cos \theta < 0 \) → convex meniscus (liquid does not wet the surface).
Step-by-Step Solution:
Step 1: Analyze the expression for \( K \).
\[ K = \frac{\cos \theta_A}{\cos \theta_B} \]
The sign of \( K \) depends on the signs of \( \cos \theta_A \) and \( \cos \theta_B \).
Step 2: Consider the case when \( K \) is negative.
If \( K \) is negative, then one cosine term must be positive and the other negative.
- So, one liquid has \( \theta < 90^\circ \) (concave meniscus), and
- the other liquid has \( \theta > 90^\circ \) (convex meniscus).
Step 3: Determine which one corresponds to which case.
For \( K \) to be negative, \( \cos \theta_A \) and \( \cos \theta_B \) have opposite signs. Hence:
- If \( \cos \theta_A > 0 \) → Liquid A has concave meniscus.
- If \( \cos \theta_B < 0 \) → Liquid B has convex meniscus.
Step 4: Now, consider the case when \( K = 0 \).
\[ K = 0 \implies \cos \theta_A = 0 \]
This means \( \theta_A = 90^\circ \). At this angle, the liquid does not rise or fall, and the meniscus is flat. Thus, Liquid A neither wets nor repels the surface, while Liquid B’s nature depends on its own contact angle \( \theta_B \).
Final Computation & Result:
Hence, the correct interpretation is:
\[ \boxed{\text{If } K \text{ is negative, then liquid A has concave meniscus and liquid B has convex meniscus.}} \]
Final Answer: The correct statement is — If \( K \) is negative, then liquid A has concave meniscus and liquid B has convex meniscus.
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