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Question
- for teks 13c, students must classify processes as exothermic or endothermic. which of the following is an endothermic process?
a. combustion of propane in a grill (δh < 0)
b. freezing of water to form ice (δh < 0)
c. melting of ice into liquid water (δh > 0)
d. neutralization of hcl by naoh (δh < 0)
- a graph of enthalpy vs. progress of reaction shows reactants at 0 kj and products at -120 kj. this reaction is:
a. endothermic and absorbs 120 kj
b. exothermic and releases 120 kj
c. endothermic and releases 120 kj
d. exothermic and absorbs 120 kj
- which example best aligns with teks 13d: \explain how factors affect energy changes in chemical reactions\?
a. changing the pressure of a gas during a reaction
b. changing the concentration of reactants and observing temperature change
c. observing the color change in a chemical reaction
d. measuring the ph change during titration
- when you double the amount of reactant in a calorimeter experiment (assuming everything else constant) the temperature change will:
a. be half as much
b. be the same
c. double
d. become negative
- if δh = +250 kj for a reaction, what can be said about that reaction (in terms of teks 13c/13d)?
a. it is exothermic and energy is released.
b. it is endothermic and energy is absorbed.
c. it is exothermic and energy is absorbed.
d. it is endothermic and energy is released.
- Question 5: Endothermic processes have $\Delta H>0$. Melting ice ($\Delta H > 0$) absorbs heat. Combustion ($\Delta H<0$), freezing ($\Delta H<0$), and neutralization ($\Delta H<0$) are exothermic.
- Question 6: $\Delta H=\text{Products}-\text{Reactants}=- 120\ kJ$. A negative $\Delta H$ means exothermic (energy released).
- Question 7: Changing reactant concentration (a factor) and observing temperature (energy change) aligns with TEKS 13D. Pressure (A) is less relevant, color (C) and pH (D) don't directly show energy - change factors.
- Question 8: Heat released ($q = mc\Delta T$) is proportional to reactant amount. Double reactant $\to$ double heat $\to$ double $\Delta T$ (if $m$ and $c$ constant).
- Question 9: $\Delta H=+250\ kJ>0$: endothermic (absorbs energy).
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- C. Melting of ice into liquid water ($\Delta H>0$)
- B. Exothermic and releases 120 kJ
- B. Changing the concentration of reactants and observing temperature change
- C. Double
- B. It is endothermic and energy is absorbed.