5th Grade Science Quiz: Explain Matter Is Conserved
20 questions · exam conditions
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Explain Matter Is ConservedQuestion 1 of 20

Chen mixed 15 g sugar with 200 g water; it stayed 215 g. Why?​

because the sugar disappeared and the water became heavier to balance it
because matter was not created or destroyed; the same particles were still there
because heating from stirring kept the weight the same no matter what
because the scale was accurate, so it showed the same number again
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5th Grade Science Quiz

5th Grade Science Quiz: Explain Matter Is Conserved

Practice Explain Matter Is Conserved in 5th Grade Science with focused quiz questions that help you check what you know, review explanations, and build confidence with test-style prompts.

What this quiz covers

This quiz focuses on Explain Matter Is Conserved, giving you a quick way to practice the rules, question types, and explanations that matter most for 5th Grade Science.

How to use this quiz

Try each quiz question before looking at the correct answer. Use the explanations to review missed ideas, then come back to similar questions until the pattern feels familiar.

All questions

Question 1

Chen mixed 15 g sugar with 200 g water; it stayed 215 g. Why?​

  1. because the sugar disappeared and the water became heavier to balance it
  2. because matter was not created or destroyed; the same particles were still there (correct answer)
  3. because heating from stirring kept the weight the same no matter what
  4. because the scale was accurate, so it showed the same number again
Explanation: This question tests the ability to use evidence from measurements to explain that matter is conserved during physical and chemical changes (NGSS 5-PS1-2). Students must provide causative reasoning, not just state the observation. The fundamental principle of conservation of matter is that matter cannot be created or destroyed during physical changes like dissolving or mixing, so the total weight stays constant as particles rearrange but remain the same in amount, such as when 15 g sugar particles spread between 200 g water particles to form a 215 g solution without any matter lost or gained. Choice B is correct because it provides a causative explanation: matter was not created or destroyed, the same particles were still there, demonstrating that conservation means the total amount of matter stays the same even after dissolving. Choice A represents incorrect reasoning: it claims the sugar disappeared and water became heavier, which contradicts conservation by suggesting matter can vanish and be compensated elsewhere without explaining the unchanged total weight based on particle persistence. To help students explain conservation, use sentence frames like 'The weight stayed the same because matter cannot be created or destroyed, so all the particles from the sugar and water are still there, just mixed together'; practice tracing particles by saying 'The 15 g sugar particles didn't disappear—they're spread out in the water, keeping the total at 215 g.' Always ask 'Why does the weight stay the same?' to distinguish observation from causal explanation based on conservation of matter.

Question 2

Maya froze 180 g of water overnight; the ice still weighed 180 g—explain why.

  1. Because freezing makes water heavier, but the freezer removed extra weight at the same time.
  2. Because matter was conserved; the same particles were still there, just packed differently as ice. (correct answer)
  3. Because ice and water always weigh the same, even if some water is missing.
  4. Because the scale cannot measure cold things well, so it showed 180 g again.
Explanation: This question tests the ability to use evidence from measurements to explain that matter is conserved during physical and chemical changes (NGSS 5-PS1-2). Students must provide causative reasoning, not just state the observation. The fundamental principle of conservation of matter is that matter cannot be created or destroyed during physical changes (melting, freezing, dissolving, mixing) or ordinary chemical changes (reactions that don't involve nuclear processes). This means the total amount of matter—measured by weight—stays constant. When ice melts to water, the particles rearrange from organized solid to flowing liquid, but the same number of water particles are still there (60 grams of ice = 60 grams of water). When sugar dissolves, the sugar particles separate and spread between water particles—both types of particles still present, so 15g sugar + 200g water = 215g solution. When a chemical reaction occurs in a sealed container, atoms rearrange to form new substances, but the same atoms are present (10g baking soda + 50g vinegar = 60g products including gas). Weight before equals weight after because the amount of matter is the same. Choice B is correct because it provides a causative explanation: matter was conserved, the same particles were still there, just packed differently as ice, demonstrating understanding that conservation of matter means the matter that was there before freezing is still there after—weight stays the same because the total amount of matter hasn't changed, even though the arrangement changed. Choice A represents incomplete or incorrect reasoning: it claims freezing makes water heavier but the freezer removed extra weight. This fails because it contradicts conservation by suggesting matter can be created or destroyed, instead of explaining that the same particles remain. To help students explain conservation (not just state it): Use the phrase 'matter cannot be created or destroyed' but always follow with concrete examples. Practice sentence frames: 'The weight stayed the same because all the matter that was there before [melting/mixing/dissolving] is still there after, just [in a different form/rearranged/spread out].' Have students trace particle pathways: 'The 60 grams of ice particles are now 60 grams of water particles—same particles, different arrangement, same total amount of matter.' Distinguish observation (weight stayed at 60g) from explanation (matter was not created or destroyed, so the amount stayed the same). Watch for: Students who restate the observation as explanation ('It stayed 60g because it didn't change'), or who focus on appearance ('looks different'), or who don't connect conservation principle to the specific evidence. Always ask: 'WHY does conservation of matter mean the weight stayed the same?'

Question 3

A class saw 50 g ice melt to 50 g water in a sealed bag; explain why.

  1. Because matter was conserved; the same particles stayed in the bag, only the form changed. (correct answer)
  2. Because melting makes water lighter, but the bag got heavier to balance it out.
  3. Because the bag looked wet after melting, and wet things always weigh 50 g.
  4. Because the scale repeated the number 50 g, even if the weight really changed.
Explanation: This question tests the ability to use evidence from measurements to explain that matter is conserved during physical and chemical changes (NGSS 5-PS1-2). Students must provide causative reasoning, not just state the observation. The fundamental principle of conservation of matter is that matter cannot be created or destroyed during physical changes (melting, freezing, dissolving, mixing) or ordinary chemical changes (reactions that don't involve nuclear processes). This means the total amount of matter—measured by weight—stays constant. When ice melts to water, the particles rearrange from organized solid to flowing liquid, but the same number of water particles are still there (60 grams of ice = 60 grams of water). When sugar dissolves, the sugar particles separate and spread between water particles—both types of particles still present, so 15g sugar + 200g water = 215g solution. When a chemical reaction occurs in a sealed container, atoms rearrange to form new substances, but the same atoms are present (10g baking soda + 50g vinegar = 60g products including gas). Weight before equals weight after because the amount of matter is the same. Choice A is correct because it provides a causative explanation: matter was conserved, the same particles stayed in the bag, only the form changed, demonstrating understanding that conservation of matter means the matter that was there before melting is still there after—weight stays the same because the total amount of matter hasn't changed, even though the form changed. Choice B represents incomplete or incorrect reasoning: it claims melting makes water lighter but the bag got heavier to balance it out. This fails because it contradicts conservation by suggesting changes in matter amount that aren't real, instead of explaining the same matter persists. To help students explain conservation (not just state it): Use the phrase 'matter cannot be created or destroyed' but always follow with concrete examples. Practice sentence frames: 'The weight stayed the same because all the matter that was there before [melting/mixing/dissolving] is still there after, just [in a different form/rearranged/spread out].' Have students trace particle pathways: 'The 60 grams of ice particles are now 60 grams of water particles—same particles, different arrangement, same total amount of matter.' Distinguish observation (weight stayed at 60g) from explanation (matter was not created or destroyed, so the amount stayed the same). Watch for: Students who restate the observation as explanation ('It stayed 60g because it didn't change'), or who focus on appearance ('looks different'), or who don't connect conservation principle to the specific evidence. Always ask: 'WHY does conservation of matter mean the weight stayed the same?'

Question 4

Keisha cooled 90 g of warm water in a closed jar; it still weighed 90 g—why?

  1. Because cooling does not affect weight, so the number must stay 90 g.
  2. Because the jar was closed, so the same amount of matter stayed inside as particles slowed down. (correct answer)
  3. Because some water turned into cold, and cold has the same weight as water.
  4. Because the scale was already set to 90 g, so it kept showing that number.
Explanation: This question tests the ability to use evidence from measurements to explain that matter is conserved during physical and chemical changes (NGSS 5-PS1-2). Students must provide causative reasoning, not just state the observation. The fundamental principle of conservation of matter is that matter cannot be created or destroyed during physical changes (melting, freezing, dissolving, mixing) or ordinary chemical changes (reactions that don't involve nuclear processes). This means the total amount of matter—measured by weight—stays constant. When ice melts to water, the particles rearrange from organized solid to flowing liquid, but the same number of water particles are still there (60 grams of ice = 60 grams of water). When sugar dissolves, the sugar particles separate and spread between water particles—both types of particles still present, so 15g sugar + 200g water = 215g solution. When a chemical reaction occurs in a sealed container, atoms rearrange to form new substances, but the same atoms are present (10g baking soda + 50g vinegar = 60g products including gas). Weight before equals weight after because the amount of matter is the same. Choice B is correct because it provides a causative explanation: the jar was closed, so the same amount of matter stayed inside as particles slowed down, demonstrating understanding that conservation of matter means the matter that was there before cooling is still there after—weight stays the same because the total amount of matter hasn't changed, even though the particles' motion changed. Choice C represents incomplete or incorrect reasoning: it claims some water turned into cold, and cold has the same weight as water. This fails because it confuses matter with temperature properties and suggests invalid transformations. To help students explain conservation (not just state it): Use the phrase 'matter cannot be created or destroyed' but always follow with concrete examples. Practice sentence frames: 'The weight stayed the same because all the matter that was there before [melting/mixing/dissolving] is still there after, just [in a different form/rearranged/spread out].' Have students trace particle pathways: 'The 60 grams of ice particles are now 60 grams of water particles—same particles, different arrangement, same total amount of matter.' Distinguish observation (weight stayed at 60g) from explanation (matter was not created or destroyed, so the amount stayed the same). Watch for: Students who restate the observation as explanation ('It stayed 60g because it didn't change'), or who focus on appearance ('looks different'), or who don't connect conservation principle to the specific evidence. Always ask: 'WHY does conservation of matter mean the weight stayed the same?'

Question 5

Chen weighed 40 g salt in a sealed bag, then 40 g after crushing it; explain why.

  1. Because crushing made the particles smaller, so there were more particles to keep 40 g.
  2. Because the same amount of matter stayed in the sealed bag; the particles only changed shape and size. (correct answer)
  3. Because crushed salt weighs less, but the bag added weight to keep the total at 40 g.
  4. Because the bag looked more filled after crushing, and fuller bags always weigh the same.
Explanation: This question tests the ability to use evidence from measurements to explain that matter is conserved during physical and chemical changes (NGSS 5-PS1-2). Students must provide causative reasoning, not just state the observation. The fundamental principle of conservation of matter is that matter cannot be created or destroyed during physical changes (melting, freezing, dissolving, mixing) or ordinary chemical changes (reactions that don't involve nuclear processes). This means the total amount of matter—measured by weight—stays constant. When ice melts to water, the particles rearrange from organized solid to flowing liquid, but the same number of water particles are still there (60 grams of ice = 60 grams of water). When sugar dissolves, the sugar particles separate and spread between water particles—both types of particles still present, so 15g sugar + 200g water = 215g solution. When a chemical reaction occurs in a sealed container, atoms rearrange to form new substances, but the same atoms are present (10g baking soda + 50g vinegar = 60g products including gas). Weight before equals weight after because the amount of matter is the same. Choice B is correct because it provides a causative explanation: the same amount of matter stayed in the sealed bag, the particles only changed shape and size, demonstrating understanding that conservation of matter means the matter that was there before crushing is still there after—weight stays the same because the total amount of matter hasn't changed, even though the particles' size changed. Choice A represents incomplete or incorrect reasoning: it claims crushing made particles smaller so there were more particles. This fails because it suggests creation of matter through size change, which contradicts conservation and confuses quantity with amount. To help students explain conservation (not just state it): Use the phrase 'matter cannot be created or destroyed' but always follow with concrete examples. Practice sentence frames: 'The weight stayed the same because all the matter that was there before [melting/mixing/dissolving] is still there after, just [in a different form/rearranged/spread out].' Have students trace particle pathways: 'The 60 grams of ice particles are now 60 grams of water particles—same particles, different arrangement, same total amount of matter.' Distinguish observation (weight stayed at 60g) from explanation (matter was not created or destroyed, so the amount stayed the same). Watch for: Students who restate the observation as explanation ('It stayed 60g because it didn't change'), or who focus on appearance ('looks different'), or who don't connect conservation principle to the specific evidence. Always ask: 'WHY does conservation of matter mean the weight stayed the same?'

Question 6

Marcus mixed 30 g salt and 30 g sand; the mixture weighed 60 g—why?

  1. Because mixing made new matter that replaced any matter that disappeared while stirring.
  2. Because the grains looked the same size, so the total weight had to stay 60 g.
  3. Because all the salt and sand particles were still in the bowl, just mixed together. (correct answer)
  4. Because the bowl blocks weight changes, so the scale always shows the same number.
Explanation: This question tests the ability to use evidence from measurements to explain that matter is conserved during physical and chemical changes (NGSS 5-PS1-2). Students must provide causative reasoning, not just state the observation. The fundamental principle of conservation of matter is that matter cannot be created or destroyed during physical changes (melting, freezing, dissolving, mixing) or ordinary chemical changes (reactions that don't involve nuclear processes). This means the total amount of matter—measured by weight—stays constant. When ice melts to water, the particles rearrange from organized solid to flowing liquid, but the same number of water particles are still there (60 grams of ice = 60 grams of water). When sugar dissolves, the sugar particles separate and spread between water particles—both types of particles still present, so 15g sugar + 200g water = 215g solution. When a chemical reaction occurs in a sealed container, atoms rearrange to form new substances, but the same atoms are present (10g baking soda + 50g vinegar = 60g products including gas). Weight before equals weight after because the amount of matter is the same. Choice C is correct because it provides a causative explanation: all the salt and sand particles were still in the bowl, just mixed together, demonstrating understanding that conservation of matter means the matter that was there before mixing is still there after—weight stays the same because the total amount of matter hasn't changed, even though the arrangement changed. Choice A represents incomplete or incorrect reasoning: it claims mixing made new matter that replaced disappeared matter. This fails because it contradicts conservation by suggesting matter can be created and destroyed, instead of explaining that the same particles remain. To help students explain conservation (not just state it): Use the phrase 'matter cannot be created or destroyed' but always follow with concrete examples. Practice sentence frames: 'The weight stayed the same because all the matter that was there before [melting/mixing/dissolving] is still there after, just [in a different form/rearranged/spread out].' Have students trace particle pathways: 'The 60 grams of ice particles are now 60 grams of water particles—same particles, different arrangement, same total amount of matter.' Distinguish observation (weight stayed at 60g) from explanation (matter was not created or destroyed, so the amount stayed the same). Watch for: Students who restate the observation as explanation ('It stayed 60g because it didn't change'), or who focus on appearance ('looks different'), or who don't connect conservation principle to the specific evidence. Always ask: 'WHY does conservation of matter mean the weight stayed the same?'

Question 7

Emma put 40 g ice in a sealed cup; after melting it still read 40 g. Why?

  1. because the ice changed to water, but the same particles stayed in the cup (correct answer)
  2. because melting makes things lighter, but the cup got heavier at the same time
  3. because the scale always shows the first number it measured for that cup
  4. because solids and liquids have equal weight, so changing state changes nothing
Explanation: This question tests the ability to use evidence from measurements to explain that matter is conserved during physical and chemical changes (NGSS 5-PS1-2). Students must provide causative reasoning, not just state the observation. The fundamental principle of conservation of matter is that matter cannot be created or destroyed during physical changes like melting in a sealed cup, where 40 g ice particles become liquid water particles but remain enclosed, preserving the total weight. Choice A is correct because it provides a causative explanation: the ice changed to water but the same particles stayed in the cup, showing conservation keeps the amount of matter unchanged. Choice B represents incorrect reasoning: it claims melting makes things lighter but the cup compensates, which contradicts conservation with unfounded compensation. To help students explain conservation, use sentence frames like 'The weight stayed the same because matter cannot be created or destroyed, so the ice particles became water particles but stayed inside'; visualize '40 g ice = 40 g water—same particles, different state.' Inquire 'Why does the sealed cup matter?' to highlight system boundaries.

Question 8

Maya froze 180 g water overnight; the ice still weighed 180 g. Why did it stay the same?​

  1. because cold temperatures add weight, but freezing removes the same amount
  2. because the particles were still all there; only their arrangement changed (correct answer)
  3. because ice takes up more space, so it must weigh exactly the same
  4. because the water partly disappeared, but the container got heavier to match
Explanation: This question tests the ability to use evidence from measurements to explain that matter is conserved during physical and chemical changes (NGSS 5-PS1-2). Students must provide causative reasoning, not just state the observation. The fundamental principle of conservation of matter is that matter cannot be created or destroyed during physical changes like freezing, where 180 g water particles organize into solid ice but the total amount stays the same without any addition or loss. Choice B is correct because it provides a causative explanation: the particles were still all there, only their arrangement changed, showing that weight remained constant as matter was conserved in amount despite the phase shift. Choice D represents incorrect reasoning: it claims water partly disappeared but the container got heavier, which contradicts conservation by implying matter loss and magical compensation. To help students explain conservation, use sentence frames like 'The weight stayed the same because matter cannot be created or destroyed, so all the water particles are still there as ice, just in a solid arrangement'; have them visualize 'The 180 g liquid particles froze into 180 g solid particles—same number, different spacing.' Probe with 'Why doesn't freezing change the total matter?' to build causal links.

Question 9

Amir heated 150 g water in a closed container to 60°C; it was still 150 g. Why?​

  1. because heat cannot change weight, so the scale must always match
  2. because some water turned into energy, but energy weighs the same as water
  3. because no matter was created or destroyed; the same particles stayed inside (correct answer)
  4. because the thermometer kept the mass constant by controlling the temperature
Explanation: This question tests the ability to use evidence from measurements to explain that matter is conserved during physical and chemical changes (NGSS 5-PS1-2). Students must provide causative reasoning, not just state the observation. The fundamental principle of conservation of matter is that matter cannot be created or destroyed during physical changes like heating in a closed container, where 150 g water particles gain energy but stay inside, maintaining the total weight without evaporation or loss. Choice C is correct because it provides a causative explanation: no matter was created or destroyed, the same particles stayed inside, showing weight constancy due to conserved matter despite temperature change. Choice B represents incorrect reasoning: it claims water turned into energy but energy weighs the same, which confuses matter-energy conversion and contradicts basic conservation. To help students explain conservation, use sentence frames like 'The weight stayed the same because matter cannot be created or destroyed, so all the water particles remained inside even when heated'; emphasize '150 g water at room temp = 150 g warmer water—same particles, more motion.' Question 'Why didn't heating make it lighter?' to reinforce closed-system effects.

Question 10

In a sealed bottle, Jamal mixed 10 g baking soda + 50 g vinegar; after fizzing it was 60 g. Why?​

  1. because bubbles are weightless, so they did not add or remove any matter
  2. because the scale could not measure gas, so it still read the old weight
  3. because matter stayed in the sealed bottle; particles rearranged but none escaped (correct answer)
  4. because some matter was destroyed during fizzing, but the rest became heavier
Explanation: This question tests the ability to use evidence from measurements to explain that matter is conserved during physical and chemical changes (NGSS 5-PS1-2). Students must provide causative reasoning, not just state the observation. The fundamental principle of conservation of matter is that matter cannot be created or destroyed during chemical changes like reactions in a sealed container, where atoms from 10 g baking soda and 50 g vinegar rearrange into new substances including gas, but the total 60 g remains because no matter escapes. Choice C is correct because it provides a causative explanation: matter stayed in the sealed bottle, particles rearranged but none escaped, illustrating that weight stayed the same as the amount of matter was conserved despite fizzing. Choice D represents incorrect reasoning: it claims some matter was destroyed but the rest became heavier, which contradicts conservation by suggesting matter can be destroyed and compensated without particle continuity. To help students explain conservation, use sentence frames like 'The weight stayed the same because matter cannot be created or destroyed, so all particles stayed inside the sealed bottle, just rearranged into new forms including gas'; practice with 'The 60 g of reactants became 60 g of products—same atoms, different combinations.' Emphasize asking 'Why didn't the gas make the weight change?' to connect sealing to matter retention.

Question 11

Sofia had 60 g ice in a sealed bag; after melting it was 60 g. Why?

  1. because matter was conserved; the same particles became liquid but stayed inside (correct answer)
  2. because solids and liquids always weigh the same amount no matter what
  3. because the ice was destroyed, but new water matter was created to replace it
  4. because it looked different, so the weight stayed the same by coincidence
Explanation: This question tests the ability to use evidence from measurements to explain that matter is conserved during physical and chemical changes (NGSS 5-PS1-2). Students must provide causative reasoning, not just state the observation. The fundamental principle of conservation of matter is that matter cannot be created or destroyed during physical changes like melting, where ice particles rearrange into liquid water but the total amount remains the same, so 60 g of ice equals 60 g of water in a sealed bag with no particles added or removed. Choice A is correct because it provides a causative explanation: matter was conserved, the same particles became liquid but stayed inside, showing that the weight stayed the same because the amount of matter didn't change despite the form shifting. Choice C represents incorrect reasoning: it claims ice was destroyed and new water created, which contradicts conservation by suggesting matter can be destroyed and created rather than rearranged. To help students explain conservation, use sentence frames like 'The weight stayed the same because matter cannot be created or destroyed, so the ice particles are still there as water particles in a different arrangement'; have them trace particles with 'The 60 g ice particles became 60 g water particles—same amount, just flowing now.' Distinguish observation from explanation by asking 'Why does conservation mean the weight didn't change even though it looks different?'

Question 12

In a sealed bottle, Jamal mixed 10 g baking soda + 50 g vinegar; after fizzing it was 60 g. Why?

  1. because bubbles are weightless, so they did not add or remove any matter
  2. because the scale could not measure gas, so it still read the old weight
  3. because matter stayed in the sealed bottle; particles rearranged but none escaped (correct answer)
  4. because some matter was destroyed during fizzing, but the rest became heavier
Explanation: This question tests the ability to use evidence from measurements to explain that matter is conserved during physical and chemical changes (NGSS 5-PS1-2). Students must provide causative reasoning, not just state the observation. The fundamental principle of conservation of matter is that matter cannot be created or destroyed during chemical changes like reactions in a sealed container, where atoms from 10 g baking soda and 50 g vinegar rearrange into new substances including gas, but the total 60 g remains because no matter escapes. Choice C is correct because it provides a causative explanation: matter stayed in the sealed bottle, particles rearranged but none escaped, illustrating that weight stayed the same as the amount of matter was conserved despite fizzing. Choice D represents incorrect reasoning: it claims some matter was destroyed but the rest became heavier, which contradicts conservation by suggesting matter can be destroyed and compensated without particle continuity. To help students explain conservation, use sentence frames like 'The weight stayed the same because matter cannot be created or destroyed, so all particles stayed inside the sealed bottle, just rearranged into new forms including gas'; practice with 'The 60 g of reactants became 60 g of products—same atoms, different combinations.' Emphasize asking 'Why didn't the gas make the weight change?' to connect sealing to matter retention.

Question 13

Maya froze 180 g water overnight; the ice still weighed 180 g. Why did it stay the same?

  1. because cold temperatures add weight, but freezing removes the same amount
  2. because the particles were still all there; only their arrangement changed (correct answer)
  3. because ice takes up more space, so it must weigh exactly the same
  4. because the water partly disappeared, but the container got heavier to match
Explanation: This question tests the ability to use evidence from measurements to explain that matter is conserved during physical and chemical changes (NGSS 5-PS1-2). Students must provide causative reasoning, not just state the observation. The fundamental principle of conservation of matter is that matter cannot be created or destroyed during physical changes like freezing, where 180 g water particles organize into solid ice but the total amount stays the same without any addition or loss. Choice B is correct because it provides a causative explanation: the particles were still all there, only their arrangement changed, showing that weight remained constant as matter was conserved in amount despite the phase shift. Choice D represents incorrect reasoning: it claims water partly disappeared but the container got heavier, which contradicts conservation by implying matter loss and magical compensation. To help students explain conservation, use sentence frames like 'The weight stayed the same because matter cannot be created or destroyed, so all the water particles are still there as ice, just in a solid arrangement'; have them visualize 'The 180 g liquid particles froze into 180 g solid particles—same number, different spacing.' Probe with 'Why doesn't freezing change the total matter?' to build causal links.

Question 14

Chen mixed 15 g sugar with 200 g water; it stayed 215 g. Why?

  1. because the sugar disappeared and the water became heavier to balance it
  2. because matter was not created or destroyed; the same particles were still there (correct answer)
  3. because heating from stirring kept the weight the same no matter what
  4. because the scale was accurate, so it showed the same number again
Explanation: This question tests the ability to use evidence from measurements to explain that matter is conserved during physical and chemical changes (NGSS 5-PS1-2). Students must provide causative reasoning, not just state the observation. The fundamental principle of conservation of matter is that matter cannot be created or destroyed during physical changes like dissolving or mixing, so the total weight stays constant as particles rearrange but remain the same in amount, such as when 15 g sugar particles spread between 200 g water particles to form a 215 g solution without any matter lost or gained. Choice B is correct because it provides a causative explanation: matter was not created or destroyed, the same particles were still there, demonstrating that conservation means the total amount of matter stays the same even after dissolving. Choice A represents incorrect reasoning: it claims the sugar disappeared and water became heavier, which contradicts conservation by suggesting matter can vanish and be compensated elsewhere without explaining the unchanged total weight based on particle persistence. To help students explain conservation, use sentence frames like 'The weight stayed the same because matter cannot be created or destroyed, so all the particles from the sugar and water are still there, just mixed together'; practice tracing particles by saying 'The 15 g sugar particles didn't disappear—they're spread out in the water, keeping the total at 215 g.' Always ask 'Why does the weight stay the same?' to distinguish observation from causal explanation based on conservation of matter.

Question 15

Keisha dissolved 20 g salt in 100 g water; the total stayed 120 g. Why?​

  1. because the salt broke into invisible pieces, but it was still in the water (correct answer)
  2. because the salt was destroyed when it dissolved, so only water was left
  3. because the scale stayed at 120 g since it does not detect dissolved matter
  4. because liquids always weigh the same even when you add solids to them
Explanation: This question tests the ability to use evidence from measurements to explain that matter is conserved during physical and chemical changes (NGSS 5-PS1-2). Students must provide causative reasoning, not just state the observation. The fundamental principle of conservation of matter is that matter cannot be created or destroyed during physical changes like dissolving, where 20 g salt particles separate and mix invisibly with 100 g water particles, resulting in a 120 g solution with all matter intact. Choice A is correct because it provides a causative explanation: the salt broke into invisible pieces but was still in the water, illustrating that weight stayed the same as particles persisted despite visibility change. Choice B represents incorrect reasoning: it claims salt was destroyed, leaving only water, which contradicts conservation by suggesting matter destruction. To help students explain conservation, use sentence frames like 'The weight stayed the same because matter cannot be created or destroyed, so the salt particles are still there, just dissolved and invisible'; trace with '20 g salt + 100 g water = 120 g solution—same particles, spread out.' Ask 'Why does dissolving not reduce weight?' to address misconceptions about disappearance.

Question 16

In a sealed jar, Jamal mixed 12 g baking soda with 48 g vinegar; after fizzing it was 60 g. Why?

  1. because the gas was still inside the sealed jar, so no matter was lost (correct answer)
  2. because fizzing destroys some matter, but the remaining matter becomes denser
  3. because bubbles rise upward, so they stop counting toward the jar's weight
  4. because the reaction finished, and finished reactions always weigh the same
Explanation: This question tests the ability to use evidence from measurements to explain that matter is conserved during physical and chemical changes (NGSS 5-PS1-2). Students must provide causative reasoning, not just state the observation. The fundamental principle of conservation of matter is that matter cannot be created or destroyed during chemical changes in a sealed jar, where 12 g baking soda and 48 g vinegar react to form products including gas, but the total 60 g persists as all particles, including gas, stay trapped. Choice A is correct because it provides a causative explanation: the gas was still inside the sealed jar, so no matter was lost, demonstrating weight stability through conservation. Choice B represents incorrect reasoning: it claims fizzing destroys matter but the rest densifies, contradicting conservation with destruction and compensation. To help students explain conservation, use sentence frames like 'The weight stayed the same because matter cannot be created or destroyed, so all particles including gas stayed in the jar'; practice '60 g reactants = 60 g products—gas trapped, no loss.' Ask 'Why does sealing prevent weight change?' to connect to gas retention.

Question 17

In a sealed jar, Jamal mixed 12 g baking soda with 48 g vinegar; after fizzing it was 60 g. Why?​

  1. because the gas was still inside the sealed jar, so no matter was lost (correct answer)
  2. because fizzing destroys some matter, but the remaining matter becomes denser
  3. because bubbles rise upward, so they stop counting toward the jar's weight
  4. because the reaction finished, and finished reactions always weigh the same
Explanation: This question tests the ability to use evidence from measurements to explain that matter is conserved during physical and chemical changes (NGSS 5-PS1-2). Students must provide causative reasoning, not just state the observation. The fundamental principle of conservation of matter is that matter cannot be created or destroyed during chemical changes in a sealed jar, where 12 g baking soda and 48 g vinegar react to form products including gas, but the total 60 g persists as all particles, including gas, stay trapped. Choice A is correct because it provides a causative explanation: the gas was still inside the sealed jar, so no matter was lost, demonstrating weight stability through conservation. Choice B represents incorrect reasoning: it claims fizzing destroys matter but the rest densifies, contradicting conservation with destruction and compensation. To help students explain conservation, use sentence frames like 'The weight stayed the same because matter cannot be created or destroyed, so all particles including gas stayed in the jar'; practice '60 g reactants = 60 g products—gas trapped, no loss.' Ask 'Why does sealing prevent weight change?' to connect to gas retention.

Question 18

A class measured: melting 50g→50g, dissolving 110g→110g, freezing 200g→200g, mixing 80g→80g. Why?

  1. because matter stayed the same amount each time; particles only changed form or mixed (correct answer)
  2. because the changes looked small, so the scale did not notice any difference
  3. because some matter was lost each time, but new matter was made to replace it
  4. because temperature changes always force the weight to return to the starting number
Explanation: This question tests the ability to use evidence from measurements to explain that matter is conserved during physical and chemical changes (NGSS 5-PS1-2). Students must provide causative reasoning, not just state the observation. The fundamental principle of conservation of matter is that matter cannot be created or destroyed during various physical changes like melting (50 g to 50 g), dissolving (110 g to 110 g), freezing (200 g to 200 g), and mixing (80 g to 80 g), where particles change form or arrangement but the total amount remains constant in each case. Choice A is correct because it provides a causative explanation: matter stayed the same amount each time, particles only changed form or mixed, showing consistent conservation across scenarios. Choice C represents incorrect reasoning: it claims matter was lost but replaced, which contradicts conservation by suggesting creation and destruction. To help students explain conservation, use sentence frames like 'The weights stayed the same because matter cannot be created or destroyed, so in each change, the particles were still all there, just rearranged or in a new form'; compare examples with 'Like melting 50 g ice to 50 g water—same for all.' Always ask 'Why do all these changes show the same pattern?' to generalize the principle.

Question 19

Sofia had 60 g ice in a sealed bag; after melting it was 60 g. Why?​

  1. because matter was conserved; the same particles became liquid but stayed inside (correct answer)
  2. because solids and liquids always weigh the same amount no matter what
  3. because the ice was destroyed, but new water matter was created to replace it
  4. because it looked different, so the weight stayed the same by coincidence
Explanation: This question tests the ability to use evidence from measurements to explain that matter is conserved during physical and chemical changes (NGSS 5-PS1-2). Students must provide causative reasoning, not just state the observation. The fundamental principle of conservation of matter is that matter cannot be created or destroyed during physical changes like melting, where ice particles rearrange into liquid water but the total amount remains the same, so 60 g of ice equals 60 g of water in a sealed bag with no particles added or removed. Choice A is correct because it provides a causative explanation: matter was conserved, the same particles became liquid but stayed inside, showing that the weight stayed the same because the amount of matter didn't change despite the form shifting. Choice C represents incorrect reasoning: it claims ice was destroyed and new water created, which contradicts conservation by suggesting matter can be destroyed and created rather than rearranged. To help students explain conservation, use sentence frames like 'The weight stayed the same because matter cannot be created or destroyed, so the ice particles are still there as water particles in a different arrangement'; have them trace particles with 'The 60 g ice particles became 60 g water particles—same amount, just flowing now.' Distinguish observation from explanation by asking 'Why does conservation mean the weight didn't change even though it looks different?'

Question 20

Marcus mixed 30 g salt and 30 g sand; after stirring, the mixture was 60 g. Why?​

  1. because mixing makes matter vanish, but the bowl's weight replaced it
  2. because the grains got smaller, so there were more pieces to keep weight
  3. because the same amount of matter was still present; it was just combined (correct answer)
  4. because it looked like one pile, so the scale showed one total number
Explanation: This question tests the ability to use evidence from measurements to explain that matter is conserved during physical and chemical changes (NGSS 5-PS1-2). Students must provide causative reasoning, not just state the observation. The fundamental principle of conservation of matter is that matter cannot be created or destroyed during physical changes like mixing, where 30 g salt and 30 g sand particles combine into a 60 g mixture without any matter created or lost, just rearranged. Choice C is correct because it provides a causative explanation: the same amount of matter was still present, it was just combined, demonstrating that weight stayed the same because conservation ensures no change in total matter. Choice A represents incorrect reasoning: it claims mixing makes matter vanish but the bowl replaces it, which contradicts conservation by suggesting disappearance and substitution. To help students explain conservation, use sentence frames like 'The weight stayed the same because matter cannot be created or destroyed, so all the salt and sand particles are still there, just mixed together'; practice tracing '30 g salt + 30 g sand = 60 g mixture—same particles, combined pile.' Ask 'Why does mixing not change the total weight?' to avoid restating observations.